Compare commits

..
Author SHA1 Message Date
J. Nick Koston 157294a99c Expose enable_deflate() so the inflater can be opted out of later 2026-09-08 14:14:42 +02:00
J. Nick Koston 6146e625dd Gate RP2 gzip on the core version, log an inflate overrun, document the window aliasing 2026-09-08 14:12:09 +02:00
J. Nick Koston 8e9e6bbdd7 Trim comments 2026-09-08 13:55:58 +02:00
J. Nick Koston 773050d7c9 Simplify pass: one error channel in the inflate loop, whole-window flushes where acks go out on receipt, shared log helpers, one backend alias, leaner tests 2026-09-08 13:48:58 +02:00
J. Nick Koston 87dc5014a8 Size the distance tree to its alphabet 2026-09-08 13:43:50 +02:00
J. Nick Koston 49f9eaacb1 Honour a deflate offer over gzip on the client and record how the test vectors are made 2026-09-08 13:28:12 +02:00
J. Nick Koston cd4e07f2d0 Report every inflate failure from one site and build the fixed trees through the tree builder 2026-09-08 13:14:15 +02:00
J. Nick Koston 7e1216fe01 Note that the deflate offer is binding on both sides 2026-09-08 13:09:49 +02:00
J. Nick Koston 8027a37d61 Do not mark the ack sender inline, the header wrappers use it from every unit 2026-09-08 13:00:30 +02:00
J. Nick Koston 76e1df2c03 Ack chunks on receipt where the socket stack has its own task
With raw lwIP in the main loop the radio is deaf while a sector is written,
so the ESP8266 and RP2040 keep the client quiet until the block is in flash;
with BSD or lwIP sockets the next block can arrive while this one is written.
2026-09-08 12:54:30 +02:00
J. Nick Koston 66a0485a5c Merge branch 'dev' into ota-deflate 2026-09-08 12:24:06 +02:00
J. Nick Koston 3a83323c75 Express the constant expression requirement without a redundant literal 2026-09-08 11:31:41 +02:00
J. Nick Koston 817fcb7881 Require the backend compression capability to be a constant expression in the contract 2026-09-08 11:27:40 +02:00
J. Nick Koston 08c7e3e9aa Unit test the decoder under the sanitizers with generated vectors and corrupted streams 2026-09-08 11:23:16 +02:00
J. Nick Koston 5b5b5e3cc1 Reject a negative literal symbol, stop on eof in stored blocks, compile the decoder on LibreTiny in CI 2026-09-08 11:20:05 +02:00
J. Nick Koston eefddf85f1 Call the constexpr backend capability through the type 2026-09-08 11:09:29 +02:00
J. Nick Koston d1665c423d Ack chunks after the flash write on the inflate path and harden the decoder
Chunk acks again mean the block is in flash on both paths: the read callback
writes and acks everything decoded so far before it waits for more input.
The decoder rejects a negative distance symbol, initialises its whole state,
and the flush feeds the watchdog once per window. The static_assert on the
backend skips the static analysis build, which sets every define at once.
2026-09-08 10:54:18 +02:00
J. Nick Koston db55c1d43f Trim the inflate glue and tie the deflate gate to the backend
Measured on ESP32: the decoder is 1472 B at -Os and cannot shrink without
dropping dynamic Huffman; the glue loses its extra log sites and strings,
the flash-write log is shared, and the single-call helpers inline on the
platforms without the decoder so the ESP8266 and RP2040 images do not grow.
supports_compression() is constexpr so the deflate build asserts that its
backend cannot store gzip.
2026-09-08 10:27:20 +02:00
J. Nick Koston 27a8768986 Use clang-tidy style names in the decoder header and name the wire constants 2026-09-08 10:16:11 +02:00
J. Nick Koston a0398d120c [ota] Let the RP2040 stage a gzip image and inflate it at reboot
The Arduino Pico OTA stub already detects a gzip firmware.bin on LittleFS,
reads the inflated length from the trailer and inflates it into the app
region at reboot, so the RP2040 takes the ESP8266 path and no longer needs
the on-the-fly decoder.
2026-09-08 10:11:21 +02:00
Johnandpre-commit-ci-lite[bot] <117423508+pre-commit-ci-lite[bot]@users.noreply.github.com> f191d5e0c3 [atm90e32] Verify offset calibration writes (#18701)
Co-authored-by: pre-commit-ci-lite[bot] <117423508+pre-commit-ci-lite[bot]@users.noreply.github.com>
2026-09-08 20:02:49 +12:00
Jesse Hills 227ca90aad [core] Restore the shared git hooks after post-checkout runs script/setup (#19036) 2026-09-08 20:00:08 +12:00
Jesse Hills 1700a40b7c [core] Restore the shared git hooks after post-checkout runs script/setup (#19036) 2026-09-08 19:59:55 +12:00
J. Nick Koston deb63ea092 [esphome.ota] Compress OTA uploads with deflate on platforms without gzip support
ESP32, RP2040, LibreTiny and host could not receive a compressed image;
only the ESP8266 can, because its bootloader inflates a gzip file at reboot.
This inflates a raw deflate stream on the fly through a 4 KB ring window that
also serves as the output buffer, so the device never holds the whole image.

The CLI offers a new client feature bit; a device whose backend has no gzip
support and has the inflater compiled answers with a new server bit once the
session memory is in hand, then the CLI sends a 4 KB window deflate stream and
the MD5 of the inflated image. On allocation failure the device declines the
bit and the upload stays uncompressed. Old CLIs and old devices never set the
bits, so both directions stay compatible; the ESP8266 keeps its gzip path and
the CLI prefers gzip when a device offers both.

The decoder is uzlib's tinflate.c (zlib licence) trimmed to raw deflate.
2026-09-08 09:59:04 +02:00
raykholo 28588310e7 [anova] Re-assert temperature unit on every poll cycle (#17141) 2026-09-08 18:57:33 +12:00
10a9baff74 [rf_bridge] Fix bucket sniffing with Portisch firmware (#17683)
Co-authored-by: Bryan Li <bryanli@Bryans-MacBook-Pro.local>
Co-authored-by: Claude Fable 5 <noreply@anthropic.com>
2026-09-08 18:36:42 +12:00
Gytis a23f7bb569 [lvgl] Add missing label dependency to qrcode, keyboard and tabview (#18387) 2026-09-08 18:31:30 +12:00
J. Nick Koston 53075e4139 [core] Skip PlatformIO's private-package authorization probe (#18823) 2026-09-08 16:42:30 +12:00
Jonathan Swoboda 5722ccba37 [tuya] Build without a network component (#18948) 2026-09-08 16:36:04 +12:00
Jesse Hills 94e5c3839d [udp] Use cv.invalid for relocated packet_transport options (#19032) 2026-09-08 16:17:22 +12:00
Davide D M 574762f078 [debug] Check reboot source pref on ESP_RST_WDT and guard against empty source (#17537) 2026-09-08 13:59:05 +12:00
Pieter ViljoenandJesse Hills d34ffaf392 [ble_client] Report Established from nodes that never read services (#17920)
Co-authored-by: Jesse Hills <3060199+jesserockz@users.noreply.github.com>
2026-09-08 01:57:50 +00:00
Samuel SiebandSamuel Sieb e6aa575f2e [dallas_temp] filter 85 temp from sensor reset (#17877)
Co-authored-by: Samuel Sieb <samuel@sieb.net>
2026-09-08 13:27:49 +12:00
AndreKR 639ce609bf [logger] Fix garbled stack traces (#17939) 2026-09-08 13:13:51 +12:00
Ryan Ronnander 62eafc477d [mqtt] Restore brightness flag in light discovery (#18950) 2026-09-08 13:09:02 +12:00
mipa87andClaude 56c3361b9a [audio] Do not treat MP3_STREAM_INFO_CHANGED as a fatal decoder error (#19028)
Co-authored-by: Claude <noreply@anthropic.com>
2026-09-08 12:13:03 +12:00
mipa87Claudepre-commit-ci-lite[bot] <117423508+pre-commit-ci-lite[bot]@users.noreply.github.com>
50ca381198 [i2s_audio] Keep a start request that arrives while the speaker task stops (#19027)
Co-authored-by: Claude <noreply@anthropic.com>
Co-authored-by: pre-commit-ci-lite[bot] <117423508+pre-commit-ci-lite[bot]@users.noreply.github.com>
2026-09-08 12:10:55 +12:00
dependabot[bot] 89a56298c2 Bump prek from 0.5.1 to 0.5.2 (#19021)
Signed-off-by: dependabot[bot] <support@github.com>
2026-09-08 00:00:28 +00:00
dependabot[bot]esphome[bot] <115708604+esphome[bot]@users.noreply.github.com>Jesse Hills
390742cf9b Bump ruff from 0.16.5 to 0.16.6 (#19022)
Co-authored-by: esphome[bot] <115708604+esphome[bot]@users.noreply.github.com>
Co-authored-by: Jesse Hills <3060199+jesserockz@users.noreply.github.com>
Signed-off-by: dependabot[bot] <support@github.com>
2026-09-07 23:47:46 +00:00
Jesse Hillsandpre-commit-ci-lite[bot] <117423508+pre-commit-ci-lite[bot]@users.noreply.github.com> 5e37872da2 [ci] Sync pre-commit revs and prek version from requirements files (#19026)
Co-authored-by: pre-commit-ci-lite[bot] <117423508+pre-commit-ci-lite[bot]@users.noreply.github.com>
2026-09-08 10:32:18 +12:00
93 changed files with 6219 additions and 4817 deletions
+11 -2
View File
@@ -244,11 +244,20 @@ jobs:
steps:
- name: Check out code from GitHub
uses: actions/checkout@3d3c42e5aac5ba805825da76410c181273ba90b1 # v7.0.1
- name: Read prek version from requirements_test.txt
id: prek
# requirements_test.txt is the only place the version is pinned, so a
# Dependabot bump there is picked up here without a second edit.
run: |
if ! version=$(sed -nE 's/^prek==([^[:space:]#]+).*/\1/p' requirements_test.txt) || [ -z "$version" ]; then
echo "::error::No prek== pin found in requirements_test.txt."
exit 1
fi
echo "version=$version" >> "$GITHUB_OUTPUT"
- name: Run prek
uses: j178/prek-action@4e14d07f9231acabce116ccfca13b13dd9755ece # v3.0.0
with:
# Keep in sync with requirements_test.txt.
prek-version: "0.4.11"
prek-version: ${{ steps.prek.outputs.version }}
# This job only runs on pull requests, so nothing ever populates
# the cache on dev. Every run would miss and then write a per-pull
# request copy, which is what the old seed-cache job existed to
@@ -0,0 +1,94 @@
# Keeps pre-commit hook revs in sync with the requirements files.
#
# Dependabot only bumps the pins in requirements*.txt. Some of those tools
# are pinned again as hook revs in .pre-commit-config.yaml. This workflow
# runs script/sync_dependency_versions.py against the pull request branch
# and pushes a commit with the revs updated.
name: Sync dependency versions
on:
# pull_request_target rather than pull_request so the App secret is
# available on Dependabot pull requests (pull_request runs opened by
# Dependabot only see Dependabot secrets). The job below only touches
# branches in this repository and only ever executes the script from the
# base branch checkout, so fork code never runs with the token.
pull_request_target:
types: [opened, synchronize, reopened]
paths:
- requirements_dev.txt
- requirements_test.txt
- .pre-commit-config.yaml
- script/sync_dependency_versions.py
# The push to the pull request branch uses the App token minted below, so
# the workflow's GITHUB_TOKEN does not need any scopes.
permissions: {}
concurrency:
group: ${{ github.workflow }}-${{ github.event.pull_request.number }}
cancel-in-progress: true
jobs:
sync:
name: Sync pinned versions
runs-on: ubuntu-latest
# Same-repository branches only: a push to a fork is not possible with
# this token, and it keeps untrusted heads out of a privileged job.
if: >-
github.repository == 'esphome/esphome'
&& github.event.pull_request.head.repo.full_name == github.repository
steps:
- name: Generate a token
id: generate-token
uses: actions/create-github-app-token@bcd2ba49218906704ab6c1aa796996da409d3eb1 # v3.2.0
with:
client-id: ${{ vars.ESPHOME_GITHUB_APP_CLIENT_ID }}
private-key: ${{ secrets.ESPHOME_GITHUB_APP_PRIVATE_KEY }}
# A push made with the workflow's own GITHUB_TOKEN would not start
# CI on the new commit; a push with the App token does.
permission-contents: write # git push of the sync commit to the pull request branch
- name: Check out base branch
# Provides the script that runs below. Deliberately the base branch
# so the pull request cannot change what executes here.
uses: actions/checkout@3d3c42e5aac5ba805825da76410c181273ba90b1 # v7.0.1
with:
ref: ${{ github.event.pull_request.base.sha }}
persist-credentials: false
- name: Check out pull request branch
# No allow-unsafe-pr-checkout here on purpose: checkout v7 only
# refuses heads that live in a different repository, and the job
# condition above already limits runs to same-repository branches.
# Leaving it off keeps that refusal as a backstop for fork heads.
uses: actions/checkout@3d3c42e5aac5ba805825da76410c181273ba90b1 # v7.0.1
with:
ref: ${{ github.event.pull_request.head.ref }}
path: pull-request
token: ${{ steps.generate-token.outputs.token }}
- name: Set up Python
uses: actions/setup-python@5fda3b95a4ea91299a34e894583c3862153e4b97 # v7.0.0
with:
python-version: "3.12"
- name: Install yamlrocks
# The script edits YAML through yamlrocks. Take the pin from the
# base branch requirements so this workflow has no copy of its own.
run: pip install "$(grep -E '^yamlrocks==' requirements_test.txt | cut -d'#' -f1)"
- name: Sync pinned versions
run: python script/sync_dependency_versions.py --root pull-request
- name: Push changes
working-directory: pull-request
run: |
if git diff --quiet; then
echo "All pinned versions already match the requirements files."
exit 0
fi
git config user.name "esphome[bot]"
git config user.email "115708604+esphome[bot]@users.noreply.github.com"
git commit -am "Sync pinned tool versions with requirements files"
git push
+2 -3
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@@ -1,7 +1,6 @@
---
# See https://pre-commit.com for more information
# See https://pre-commit.com/hooks.html for more hooks
ci:
autoupdate_commit_msg: 'pre-commit: autoupdate'
autoupdate_schedule: off # Disabled until ruff versions are synced between deps and pre-commit
@@ -11,7 +10,7 @@ ci:
repos:
- repo: https://github.com/astral-sh/ruff-pre-commit
# Ruff version.
rev: v0.16.3
rev: v0.16.6
hooks:
# Run the linter.
- id: ruff
@@ -42,7 +41,7 @@ repos:
- id: pyupgrade
args: [--py312-plus]
- repo: https://github.com/adrienverge/yamllint.git
rev: v1.37.1
rev: v1.38.0
hooks:
- id: yamllint
exclude: ^(\.clang-format|\.clang-tidy)$
+1 -1
View File
@@ -840,7 +840,7 @@ file does, and it is the authority when they disagree. The most useful starting
cv.rename_key(
CONF_OLD_KEY, CONF_NEW_KEY, removed_in="2026.6.0", component="my_component"
),
cv.Schema({ ... }),
cv.Schema({...}),
)
```
For other deprecations, warn manually during validation:
+3 -4
View File
@@ -1289,10 +1289,9 @@ def _choose_ota_platform(config: ConfigType, requested: str | None) -> str:
The native API uses challenge-response auth with MD5/SHA256 hashing of a
server-issued nonce, so the password is never sent over the wire; the
``web_server`` path uses HTTP Basic auth which transmits credentials in
cleartext over the LAN. (The native path also supports gzip compression
on ESP8266, where flash space is tight; on ESP32/RP2040/LibreTiny the
backend reports ``supports_compression() == false`` and the firmware is
sent uncompressed regardless of which platform is used.) Falls back to
cleartext over the LAN. (The native path also compresses the upload:
gzip on ESP8266 and RP2040, which inflate it at reboot, and a deflate
stream on ESP32/LibreTiny, which inflate it as it arrives.) Falls back to
``web_server`` only when that is the only available platform.
"""
# Use a dict (insertion-ordered) instead of a list so error messages and
+1 -3
View File
@@ -23,9 +23,7 @@ from esphome.util import safe_print
if TYPE_CHECKING:
from collections.abc import Callable
from aioesphomeapi.api_pb2 import (
SubscribeLogsResponse, # pylint: disable=no-name-in-module
)
from aioesphomeapi.api_pb2 import SubscribeLogsResponse # pylint: disable=no-name-in-module
_LOGGER = logging.getLogger(__name__)
+51 -56
View File
@@ -13,7 +13,7 @@ void Anova::dump_config() { LOG_CLIMATE("", "Anova BLE Cooker", this); }
void Anova::setup() {
this->codec_ = make_unique<AnovaCodec>();
this->current_request_ = 0;
this->poll_step_ = PollStep::IDLE;
}
void Anova::loop() {
@@ -22,6 +22,15 @@ void Anova::loop() {
this->disable_loop();
}
void Anova::write_request_(AnovaPacket *pkt) {
auto status =
esp_ble_gattc_write_char(this->parent_->get_gattc_if(), this->parent_->get_conn_id(), this->char_handle_,
pkt->length, pkt->data, ESP_GATT_WRITE_TYPE_NO_RSP, ESP_GATT_AUTH_REQ_NONE);
if (status) {
ESP_LOGW(TAG, "[%s] esp_ble_gattc_write_char failed, status=%d", this->parent_->address_str(), status);
}
}
void Anova::control(const ClimateCall &call) {
auto mode_val = call.get_mode();
if (mode_val.has_value()) {
@@ -38,22 +47,11 @@ void Anova::control(const ClimateCall &call) {
ESP_LOGW(TAG, "Unsupported mode: %d", mode);
return;
}
auto status =
esp_ble_gattc_write_char(this->parent_->get_gattc_if(), this->parent_->get_conn_id(), this->char_handle_,
pkt->length, pkt->data, ESP_GATT_WRITE_TYPE_NO_RSP, ESP_GATT_AUTH_REQ_NONE);
if (status) {
ESP_LOGW(TAG, "[%s] esp_ble_gattc_write_char failed, status=%d", this->parent_->address_str(), status);
}
this->write_request_(pkt);
}
auto target_temp = call.get_target_temperature();
if (target_temp.has_value()) {
auto *pkt = this->codec_->get_set_target_temp_request(*target_temp);
auto status =
esp_ble_gattc_write_char(this->parent_->get_gattc_if(), this->parent_->get_conn_id(), this->char_handle_,
pkt->length, pkt->data, ESP_GATT_WRITE_TYPE_NO_RSP, ESP_GATT_AUTH_REQ_NONE);
if (status) {
ESP_LOGW(TAG, "[%s] esp_ble_gattc_write_char failed, status=%d", this->parent_->address_str(), status);
}
this->write_request_(this->codec_->get_set_target_temp_request(*target_temp));
}
}
@@ -62,6 +60,7 @@ void Anova::gattc_event_handler(esp_gattc_cb_event_t event, esp_gatt_if_t gattc_
case ESP_GATTC_DISCONNECT_EVT: {
this->current_temperature = NAN;
this->target_temperature = NAN;
this->poll_step_ = PollStep::IDLE;
this->publish_state();
break;
}
@@ -83,8 +82,8 @@ void Anova::gattc_event_handler(esp_gattc_cb_event_t event, esp_gatt_if_t gattc_
}
case ESP_GATTC_REG_FOR_NOTIFY_EVT: {
this->node_state = espbt::ClientState::ESTABLISHED;
this->current_request_ = 0;
this->update();
this->poll_step_ = PollStep::IDLE;
this->update(); // begin the first poll cycle immediately
break;
}
case ESP_GATTC_NOTIFY_EVT: {
@@ -101,33 +100,30 @@ void Anova::gattc_event_handler(esp_gattc_cb_event_t event, esp_gatt_if_t gattc_
this->mode = this->codec_->running_ ? climate::CLIMATE_MODE_HEAT : climate::CLIMATE_MODE_OFF;
}
if (this->codec_->has_unit()) {
this->fahrenheit_ = (this->codec_->unit_ == 'f');
ESP_LOGD(TAG, "Anova units is %s", this->fahrenheit_ ? "fahrenheit" : "celsius");
this->current_request_++;
ESP_LOGD(TAG, "Anova units is %s", (this->codec_->unit_ == 'f') ? "fahrenheit" : "celsius");
}
this->publish_state();
if (this->current_request_ > 1) {
AnovaPacket *pkt = nullptr;
switch (this->current_request_++) {
case 2:
pkt = this->codec_->get_read_target_temp_request();
break;
case 3:
pkt = this->codec_->get_read_current_temp_request();
break;
default:
this->current_request_ = 1;
break;
}
if (pkt != nullptr) {
auto status =
esp_ble_gattc_write_char(this->parent_->get_gattc_if(), this->parent_->get_conn_id(), this->char_handle_,
pkt->length, pkt->data, ESP_GATT_WRITE_TYPE_NO_RSP, ESP_GATT_AUTH_REQ_NONE);
if (status) {
ESP_LOGW(TAG, "[%s] esp_ble_gattc_write_char failed, status=%d", this->parent_->address_str(), status);
}
}
// Advance the poll cycle to its next request based on the reply we got.
switch (this->poll_step_) {
case PollStep::SET_UNIT:
this->poll_step_ = PollStep::STATUS;
this->write_request_(this->codec_->get_read_device_status_request());
break;
case PollStep::STATUS:
this->poll_step_ = PollStep::TARGET;
this->write_request_(this->codec_->get_read_target_temp_request());
break;
case PollStep::TARGET:
this->poll_step_ = PollStep::CURRENT;
this->write_request_(this->codec_->get_read_current_temp_request());
break;
case PollStep::CURRENT:
this->poll_step_ = PollStep::IDLE; // full cycle complete
break;
default:
// A reply to an ad-hoc control() write, outside a managed cycle.
break;
}
break;
}
@@ -136,27 +132,26 @@ void Anova::gattc_event_handler(esp_gattc_cb_event_t event, esp_gatt_if_t gattc_
}
}
void Anova::set_unit_of_measurement(const char *unit) { this->fahrenheit_ = !strncmp(unit, "f", 1); }
void Anova::set_unit_of_measurement(const char *unit) { this->want_fahrenheit_ = !strncmp(unit, "f", 1); }
void Anova::update() {
if (this->node_state != espbt::ClientState::ESTABLISHED)
return;
if (this->current_request_ < 2) {
AnovaPacket *pkt;
if (this->current_request_ == 0) {
pkt = this->codec_->get_set_unit_request(this->fahrenheit_ ? 'f' : 'c');
} else {
pkt = this->codec_->get_read_device_status_request();
}
auto status =
esp_ble_gattc_write_char(this->parent_->get_gattc_if(), this->parent_->get_conn_id(), this->char_handle_,
pkt->length, pkt->data, ESP_GATT_WRITE_TYPE_NO_RSP, ESP_GATT_AUTH_REQ_NONE);
if (status) {
ESP_LOGW(TAG, "[%s] esp_ble_gattc_write_char failed, status=%d", this->parent_->address_str(), status);
}
this->current_request_++;
if (this->poll_step_ != PollStep::IDLE) {
// The previous cycle never finished within a full polling interval -- a
// reply was missed or a write failed. Restart the cycle rather than stall;
// the polling interval itself acts as the timeout. A late reply from the
// abandoned cycle is harmless: state decoding happens on every notify
// regardless of step, and each notify sends at most one follow-up request.
ESP_LOGW(TAG, "[%s] Poll cycle incomplete (step %u); restarting cycle", this->parent_->address_str(),
static_cast<uint8_t>(this->poll_step_));
}
// Re-assert the configured unit at the start of every poll cycle, then fall
// through the status/temperature reads via the notification handler. Always
// command the configured unit (want_fahrenheit_) -- never the last value the
// device reported, or a drift to 'c' would lock itself in.
this->poll_step_ = PollStep::SET_UNIT;
this->write_request_(this->codec_->get_set_unit_request(this->want_fahrenheit_ ? 'f' : 'c'));
}
} // namespace esphome::anova
+11 -2
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@@ -37,11 +37,20 @@ class Anova final : public climate::Climate, public esphome::ble_client::BLEClie
void set_unit_of_measurement(const char *unit);
protected:
// A poll cycle re-asserts the configured unit, then reads device state.
// Re-asserting every cycle prevents the cooker from silently reverting to
// its default (Celsius); previously the unit was only set once on
// connection, so a drift persisted (and corrupted the F/C interpretation of
// subsequent readings) until the BLE link was re-established.
enum class PollStep : uint8_t { SET_UNIT, STATUS, TARGET, CURRENT, IDLE };
void write_request_(AnovaPacket *pkt);
std::unique_ptr<AnovaCodec> codec_;
void control(const climate::ClimateCall &call) override;
uint16_t char_handle_;
uint8_t current_request_;
bool fahrenheit_;
bool want_fahrenheit_{true}; // configured target unit; never overwritten by device replies
PollStep poll_step_{PollStep::IDLE};
};
} // namespace esphome::anova
+1 -6
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@@ -2255,12 +2255,7 @@ bool APIConnection::send_message_(uint32_t payload_size, uint16_t message_type,
// Capacity reserved above, cannot fail
(void) shared_buf.resize(write_start + payload_size);
ProtoWriteBuffer buffer{&shared_buf, write_start};
uint8_t *end = encode_fn(msg, buffer PROTO_ENCODE_DEBUG_INIT(&shared_buf));
#ifdef ESPHOME_DEBUG_API
assert(end == shared_buf.data() + shared_buf.size());
#else
(void) end;
#endif
encode_fn(msg, buffer PROTO_ENCODE_DEBUG_INIT(&shared_buf));
return this->send_buffer(ProtoWriteBuffer{&shared_buf}, message_type);
}
// encode_to_buffer is defined inline in api_connection.h (ESPHOME_ALWAYS_INLINE)
+24 -6
View File
@@ -345,7 +345,11 @@ class APIConnection final : public APIServerConnectionBase {
/// Returns false as soon as the TCP buffer is full. Marked nodiscard so we
/// have no silent failures: every caller must handle (or log) a refusal.
template<typename T> [[nodiscard]] bool send_message(const T &msg) {
return this->send_message_(T::calc_size_msg(&msg), T::MESSAGE_TYPE, &T::encode_msg, &msg);
if constexpr (T::ESTIMATED_SIZE == 0) {
return this->send_message_(0, T::MESSAGE_TYPE, &encode_msg_noop, &msg);
} else {
return this->send_message_(msg.calculate_size(), T::MESSAGE_TYPE, &proto_encode_msg<T>, &msg);
}
}
/// Clear the shared write buffer and reserve space for the first message.
@@ -401,6 +405,16 @@ class APIConnection final : public APIServerConnectionBase {
void process_state_subscriptions_();
#endif
// Size thunk — converts void* back to concrete type for direct calculate_size() call
template<typename T> static uint32_t calc_size(const void *msg) {
return static_cast<const T *>(msg)->calculate_size();
}
// Shared no-op encode thunk for empty messages (ESTIMATED_SIZE == 0)
static uint8_t *encode_msg_noop(const void *, ProtoWriteBuffer &buf PROTO_ENCODE_DEBUG_PARAM) {
return buf.get_pos();
}
// Non-template buffer management for send_message
bool send_message_(uint32_t payload_size, uint16_t message_type, MessageEncodeFn encode_fn, const void *msg);
@@ -419,7 +433,11 @@ class APIConnection final : public APIServerConnectionBase {
// Hot paths (state/info) go through fill_and_encode_entity_state/info instead.
// batch_message_type_ is already set by dispatch_message_ before reaching here.
template<typename T> static uint16_t encode_message_to_buffer(T &msg, APIConnection *conn, uint32_t remaining_size) {
return encode_to_buffer_slow(T::calc_size_msg(&msg), &T::encode_msg, &msg, conn, remaining_size);
if constexpr (T::ESTIMATED_SIZE == 0) {
return encode_to_buffer_slow(0, &encode_msg_noop, &msg, conn, remaining_size);
} else {
return encode_to_buffer_slow(msg.calculate_size(), &proto_encode_msg<T>, &msg, conn, remaining_size);
}
}
// Non-template core — fills state fields and encodes
@@ -431,7 +449,7 @@ class APIConnection final : public APIServerConnectionBase {
template<typename T>
static uint16_t fill_and_encode_entity_state(EntityBase *entity, T &msg, APIConnection *conn,
uint32_t remaining_size) {
return fill_and_encode_entity_state(entity, msg, &T::calc_size_msg, &T::encode_msg, conn, remaining_size);
return fill_and_encode_entity_state(entity, msg, &calc_size<T>, &proto_encode_msg<T>, conn, remaining_size);
}
// Non-template core — fills info fields, allocates buffers, and encodes
@@ -443,7 +461,7 @@ class APIConnection final : public APIServerConnectionBase {
template<typename T>
static uint16_t fill_and_encode_entity_info(EntityBase *entity, T &msg, APIConnection *conn,
uint32_t remaining_size) {
return fill_and_encode_entity_info(entity, msg, &T::calc_size_msg, &T::encode_msg, conn, remaining_size);
return fill_and_encode_entity_info(entity, msg, &calc_size<T>, &proto_encode_msg<T>, conn, remaining_size);
}
// Non-template core — fills device_class, then delegates to fill_and_encode_entity_info
@@ -457,8 +475,8 @@ class APIConnection final : public APIServerConnectionBase {
static uint16_t fill_and_encode_entity_info_with_device_class(EntityBase *entity, T &msg,
StringRef &device_class_field, APIConnection *conn,
uint32_t remaining_size) {
return fill_and_encode_entity_info_with_device_class(entity, msg, device_class_field, &T::calc_size_msg,
&T::encode_msg, conn, remaining_size);
return fill_and_encode_entity_info_with_device_class(entity, msg, device_class_field, &calc_size<T>,
&proto_encode_msg<T>, conn, remaining_size);
}
#ifdef USE_VOICE_ASSISTANT
@@ -46,13 +46,7 @@ inline uint16_t ESPHOME_ALWAYS_INLINE APIConnection::encode_to_buffer(uint32_t c
return 0;
}
ProtoWriteBuffer buffer{&shared_buf, shared_buf.size() - calculated_size};
uint8_t *end = encode_fn(msg, buffer PROTO_ENCODE_DEBUG_INIT(&shared_buf));
#ifdef ESPHOME_DEBUG_API
// A body that writes fewer bytes than calculate_size() promised would ship stale buffer bytes
assert(end == shared_buf.data() + shared_buf.size());
#else
(void) end;
#endif
encode_fn(msg, buffer PROTO_ENCODE_DEBUG_INIT(&shared_buf));
return total_calculated_size;
}
File diff suppressed because it is too large Load Diff
File diff suppressed because it is too large Load Diff
+2 -3
View File
@@ -433,9 +433,8 @@ void APIServer::send_homeassistant_action(const HomeassistantActionRequest &call
// Home Assistant subscribes to actions shortly *after* authenticating, so actions
// fired right at connection time (on_client_connected, on_time_sync, ...) can
// arrive before the subscription and are lost - warn instead of failing silently.
ESP_LOGW(TAG, "Home Assistant %s '%.*s' dropped; %s",
call.is_event ? LOG_STR_LITERAL("event") : LOG_STR_LITERAL("action"),
static_cast<int>(call.service.size()), call.service.empty() ? "" : call.service.c_str(),
ESP_LOGW(TAG, "Home Assistant %s '%s' dropped; %s",
call.is_event ? LOG_STR_LITERAL("event") : LOG_STR_LITERAL("action"), call.service.c_str(),
this->is_connected() ? LOG_STR_LITERAL("client has not subscribed to actions (yet)")
: LOG_STR_LITERAL("no client connected"));
}
+57 -58
View File
@@ -214,74 +214,73 @@ void ProtoDecodableMessage::decode(const uint8_t *buffer, size_t length) {
const uint8_t *ptr = buffer;
const uint8_t *end = buffer + length;
// Single-byte varints dominate, so that case advances the cursor inline.
auto read_varint = [&](proto_varint_value_t &value) ESPHOME_ALWAYS_INLINE {
if (ptr == end)
return false;
if (*ptr < 0x80) [[likely]] {
value = *ptr++;
return true;
}
auto res = ProtoVarInt::parse_non_empty(ptr, end - ptr);
if (!res.has_value())
return false;
value = res.value;
ptr += res.consumed;
return true;
};
while (ptr < end) {
proto_varint_value_t tag_value;
if (!read_varint(tag_value)) {
// Parse field header - ptr < end guarantees len >= 1
auto res = ProtoVarInt::parse_non_empty(ptr, end - ptr);
if (!res.has_value()) {
ESP_LOGV(TAG, "Invalid field start at offset %ld", (long) (ptr - buffer));
return;
}
uint32_t tag = static_cast<uint32_t>(tag_value);
uint32_t tag = static_cast<uint32_t>(res.value);
uint32_t field_type = tag & WIRE_TYPE_MASK;
// Length-delimited fields move this past the length prefix
const uint8_t *data = ptr;
proto_varint_value_t scalar;
uint32_t field_id = tag >> 3;
ptr += res.consumed;
if (field_type == WIRE_TYPE_VARINT) [[likely]] {
if (!read_varint(scalar)) {
ESP_LOGV(TAG, "Invalid VarInt at offset %ld", (long) (ptr - buffer));
return;
}
} else {
switch (field_type) {
case WIRE_TYPE_LENGTH_DELIMITED: {
proto_varint_value_t length_value;
if (!read_varint(length_value)) {
ESP_LOGV(TAG, "Invalid Length Delimited at offset %ld", (long) (ptr - buffer));
return;
}
uint32_t field_length = static_cast<uint32_t>(length_value);
if (field_length > static_cast<size_t>(end - ptr)) {
ESP_LOGV(TAG, "Out-of-bounds Length Delimited at offset %ld", (long) (ptr - buffer));
return;
}
data = ptr;
scalar = field_length;
ptr += field_length;
break;
}
case WIRE_TYPE_FIXED32: {
if (end - ptr < 4) {
ESP_LOGV(TAG, "Out-of-bounds Fixed32-bit at offset %ld", (long) (ptr - buffer));
return;
}
// Byte loads instead of memcpy: ESP-IDF passes -fno-builtin-memcpy, which made this a call
scalar = encode_uint32(ptr[3], ptr[2], ptr[1], ptr[0]);
ptr += 4;
break;
}
default:
ESP_LOGV(TAG, "Invalid field type %" PRIu32 " at offset %ld", field_type, (long) (ptr - buffer));
switch (field_type) {
case WIRE_TYPE_VARINT: { // VarInt
res = ProtoVarInt::parse(ptr, end - ptr);
if (!res.has_value()) {
ESP_LOGV(TAG, "Invalid VarInt at offset %ld", (long) (ptr - buffer));
return;
}
if (!this->decode_varint(field_id, res.value)) {
ESP_LOGV(TAG, "Cannot decode VarInt field %" PRIu32 " with value %" PRIu64 "!", field_id,
static_cast<uint64_t>(res.value));
}
ptr += res.consumed;
break;
}
case WIRE_TYPE_LENGTH_DELIMITED: { // Length-delimited
res = ProtoVarInt::parse(ptr, end - ptr);
if (!res.has_value()) {
ESP_LOGV(TAG, "Invalid Length Delimited at offset %ld", (long) (ptr - buffer));
return;
}
uint32_t field_length = static_cast<uint32_t>(res.value);
ptr += res.consumed;
if (field_length > static_cast<size_t>(end - ptr)) {
ESP_LOGV(TAG, "Out-of-bounds Length Delimited at offset %ld", (long) (ptr - buffer));
return;
}
if (!this->decode_length(field_id, ProtoLengthDelimited(ptr, field_length))) {
ESP_LOGV(TAG, "Cannot decode Length Delimited field %" PRIu32 "!", field_id);
}
ptr += field_length;
break;
}
case WIRE_TYPE_FIXED32: { // 32-bit
if (end - ptr < 4) {
ESP_LOGV(TAG, "Out-of-bounds Fixed32-bit at offset %ld", (long) (ptr - buffer));
return;
}
uint32_t val;
#if __BYTE_ORDER__ == __ORDER_LITTLE_ENDIAN__
// Protobuf fixed32 is little-endian — direct load on LE platforms
memcpy(&val, ptr, 4);
#else
val = encode_uint32(ptr[3], ptr[2], ptr[1], ptr[0]);
#endif
if (!this->decode_32bit(field_id, Proto32Bit(val))) {
ESP_LOGV(TAG, "Cannot decode 32-bit field %" PRIu32 " with value %" PRIu32 "!", field_id, val);
}
ptr += 4;
break;
}
default:
ESP_LOGV(TAG, "Invalid field type %" PRIu32 " at offset %ld", field_type, (long) (ptr - buffer));
return;
}
this->decode_field(tag, data, scalar);
}
}
+166 -228
View File
@@ -170,43 +170,40 @@ class ProtoVarInt {
class ProtoMessage;
class ProtoSize;
/// Case label for decode_field(): the wire tag of a field, so a field that arrives with another wire
/// type matches no case.
constexpr uint32_t proto_tag(uint32_t field_id, uint32_t wire_type) { return (field_id << 3) | wire_type; }
/// One decoded field: the payload pointer and a scalar holding the varint or fixed32 value, or the
/// length of a length-delimited field. The wire type in the tag says which applies; accessors do not check.
class ProtoFieldValue {
class ProtoLengthDelimited {
public:
ProtoFieldValue(const uint8_t *data, proto_varint_value_t scalar) : data_(data), scalar_(scalar) {}
explicit ProtoLengthDelimited(const uint8_t *value, size_t length) : value_(value), length_(length) {}
std::string as_string() const { return std::string(reinterpret_cast<const char *>(this->value_), this->length_); }
proto_varint_value_t as_varint() const { return this->scalar_; }
// A bool is sent as 0 or 1, so the low word is enough and saves a second compare with 64 bit varints
bool as_bool() const { return static_cast<uint32_t>(this->scalar_) != 0; }
// Direct access to raw data without string allocation
const uint8_t *data() const { return this->value_; }
size_t size() const { return this->length_; }
// Length-delimited accessors
const uint8_t *data() const { return this->data_; }
size_t size() const { return static_cast<size_t>(this->scalar_); }
std::string as_string() const { return std::string(reinterpret_cast<const char *>(this->data_), this->size()); }
/// Decode the length-delimited payload into a message instance.
/// Decode the length-delimited data into a message instance.
/// Template preserves concrete type so decode() resolves statically.
template<typename T> void decode_to_message(T &msg) const { msg.decode(this->data_, this->size()); }
template<typename T> void decode_to_message(T &msg) const;
// Fixed32 accessors
uint32_t as_fixed32() const { return static_cast<uint32_t>(this->scalar_); }
int32_t as_sfixed32() const { return static_cast<int32_t>(this->as_fixed32()); }
protected:
const uint8_t *const value_;
const size_t length_;
};
class Proto32Bit {
public:
explicit Proto32Bit(uint32_t value) : value_(value) {}
uint32_t as_fixed32() const { return this->value_; }
int32_t as_sfixed32() const { return static_cast<int32_t>(this->value_); }
float as_float() const {
union {
uint32_t raw;
float value;
} s{};
s.raw = this->as_fixed32();
s.raw = this->value_;
return s.value;
}
private:
const uint8_t *data_;
proto_varint_value_t scalar_;
protected:
const uint32_t value_;
};
// NOTE: Proto64Bit class removed - wire type 1 (64-bit fixed) not supported
@@ -255,7 +252,7 @@ class ProtoWriteBuffer {
*
* Following https://protobuf.dev/programming-guides/encoding/#structure
*/
void encode_field_raw(uint32_t field_id, uint32_t type) { this->encode_varint_raw(proto_tag(field_id, type)); }
void encode_field_raw(uint32_t field_id, uint32_t type) { this->encode_varint_raw((field_id << 3) | type); }
/// Single-pass encode for repeated submessage elements.
/// Thin template wrapper; all buffer work is in the non-template core.
template<typename T> void encode_sub_message(uint32_t field_id, const T &value);
@@ -290,31 +287,19 @@ class ProtoWriteBuffer {
uint8_t *pos_;
};
// A four byte unaligned store is a memcpy call on ESP-IDF (-fno-builtin-memcpy) and on ARM cores without
// unaligned access (Cortex-M0+, ARM9), so those targets share one outlined byte store helper per fixed32
// field. Elsewhere the write inlines to a single store, or on ESP8266 to a few stores that measured
// faster than a call, so it stays inline.
#if defined(USE_ESP32) || (defined(__arm__) && !defined(__ARM_FEATURE_UNALIGNED))
#define PROTO_OUTLINE_FOR_SIZE __attribute__((noinline))
#define PROTO_FIXED32_BYTE_STORES true
#else
#define PROTO_OUTLINE_FOR_SIZE inline
#define PROTO_FIXED32_BYTE_STORES false
#endif
// Varint encoding thresholds — used by both proto_encode_* free functions and ProtoSize.
constexpr uint32_t VARINT_MAX_1_BYTE = 1 << 7; // 128
constexpr uint32_t VARINT_MAX_2_BYTE = 1 << 14; // 16384
/// Static encode helpers for the generated encode bodies. Each takes the write cursor by value and
/// returns it advanced, so outlined calls at -Os chain through the return register instead of a
/// stack slot. Helpers without a _force suffix skip fields holding the proto3 default.
/// Static encode helpers for generated encode() functions.
/// Generated code hoists buffer.pos_ into a local uint8_t *__restrict__ pos,
/// then calls these methods which take pos by reference. No struct, no overhead.
/// For sub-messages, pos is synced back to buffer before the call and reloaded after.
class ProtoEncode {
public:
/// Write a multi-byte varint directly through a pos pointer.
template<typename T>
[[nodiscard]] static inline uint8_t *encode_varint_raw_loop(uint8_t *__restrict__ pos PROTO_ENCODE_DEBUG_PARAM,
T value) {
static inline void encode_varint_raw_loop(uint8_t *__restrict__ &pos PROTO_ENCODE_DEBUG_PARAM, T value) {
do {
PROTO_ENCODE_CHECK_BOUNDS(pos, 1);
*pos++ = static_cast<uint8_t>(value | 0x80);
@@ -322,49 +307,48 @@ class ProtoEncode {
} while (value > 0x7F);
PROTO_ENCODE_CHECK_BOUNDS(pos, 1);
*pos++ = static_cast<uint8_t>(value);
return pos;
}
[[nodiscard]] static inline uint8_t *ESPHOME_ALWAYS_INLINE
encode_varint_raw(uint8_t *__restrict__ pos PROTO_ENCODE_DEBUG_PARAM, uint32_t value) {
static inline void ESPHOME_ALWAYS_INLINE encode_varint_raw(uint8_t *__restrict__ &pos PROTO_ENCODE_DEBUG_PARAM,
uint32_t value) {
if (value < VARINT_MAX_1_BYTE) [[likely]] {
PROTO_ENCODE_CHECK_BOUNDS(pos, 1);
*pos++ = static_cast<uint8_t>(value);
return pos;
return;
}
return encode_varint_raw_loop(pos PROTO_ENCODE_DEBUG_ARG, value);
encode_varint_raw_loop(pos PROTO_ENCODE_DEBUG_ARG, value);
}
/// Encode a varint that is expected to be 1-2 bytes (e.g. zigzag RSSI, small lengths).
[[nodiscard]] static inline uint8_t *ESPHOME_ALWAYS_INLINE
encode_varint_raw_short(uint8_t *__restrict__ pos PROTO_ENCODE_DEBUG_PARAM, uint32_t value) {
static inline void ESPHOME_ALWAYS_INLINE encode_varint_raw_short(uint8_t *__restrict__ &pos PROTO_ENCODE_DEBUG_PARAM,
uint32_t value) {
if (value < VARINT_MAX_1_BYTE) [[likely]] {
PROTO_ENCODE_CHECK_BOUNDS(pos, 1);
*pos++ = static_cast<uint8_t>(value);
return pos;
return;
}
if (value < VARINT_MAX_2_BYTE) [[likely]] {
PROTO_ENCODE_CHECK_BOUNDS(pos, 2);
*pos++ = static_cast<uint8_t>(value | 0x80);
*pos++ = static_cast<uint8_t>(value >> 7);
return pos;
return;
}
return encode_varint_raw_loop(pos PROTO_ENCODE_DEBUG_ARG, value);
encode_varint_raw_loop(pos PROTO_ENCODE_DEBUG_ARG, value);
}
[[nodiscard]] static inline uint8_t *ESPHOME_ALWAYS_INLINE
encode_varint_raw_64(uint8_t *__restrict__ pos PROTO_ENCODE_DEBUG_PARAM, uint64_t value) {
static inline void ESPHOME_ALWAYS_INLINE encode_varint_raw_64(uint8_t *__restrict__ &pos PROTO_ENCODE_DEBUG_PARAM,
uint64_t value) {
if (value < VARINT_MAX_1_BYTE) [[likely]] {
PROTO_ENCODE_CHECK_BOUNDS(pos, 1);
*pos++ = static_cast<uint8_t>(value);
return pos;
return;
}
return encode_varint_raw_loop(pos PROTO_ENCODE_DEBUG_ARG, value);
encode_varint_raw_loop(pos PROTO_ENCODE_DEBUG_ARG, value);
}
/// Encode a 48-bit MAC address (stored in a uint64) as varint.
/// Real MAC addresses occupy the full 48 bits (OUI in upper 24), so the
/// fast path -- any non-zero bit in the top 6 of 48 -- emits exactly 7 bytes
/// with no per-byte branch. Falls back to the general loop otherwise.
/// Caller must guarantee value fits in 48 bits (checked in debug builds).
[[nodiscard]] static inline uint8_t *ESPHOME_ALWAYS_INLINE
encode_varint_raw_48bit(uint8_t *__restrict__ pos PROTO_ENCODE_DEBUG_PARAM, uint64_t value) {
static inline void ESPHOME_ALWAYS_INLINE encode_varint_raw_48bit(uint8_t *__restrict__ &pos PROTO_ENCODE_DEBUG_PARAM,
uint64_t value) {
#ifdef ESPHOME_DEBUG_API
assert(value < (1ULL << (MAC_ADDRESS_SIZE * 8)) && "encode_varint_raw_48bit: value exceeds 48 bits");
#endif
@@ -379,39 +363,38 @@ class ProtoEncode {
pos[4] = static_cast<uint8_t>((value >> 28) | 0x80);
pos[5] = static_cast<uint8_t>((value >> 35) | 0x80);
pos[6] = static_cast<uint8_t>(value >> 42);
return pos + 7;
pos += 7;
return;
}
return encode_varint_raw_64(pos PROTO_ENCODE_DEBUG_ARG, value);
encode_varint_raw_64(pos PROTO_ENCODE_DEBUG_ARG, value);
}
[[nodiscard]] static inline uint8_t *ESPHOME_ALWAYS_INLINE
encode_field_raw(uint8_t *__restrict__ pos PROTO_ENCODE_DEBUG_PARAM, uint32_t field_id, uint32_t type) {
return encode_varint_raw(pos PROTO_ENCODE_DEBUG_ARG, proto_tag(field_id, type));
static inline void ESPHOME_ALWAYS_INLINE encode_field_raw(uint8_t *__restrict__ &pos PROTO_ENCODE_DEBUG_PARAM,
uint32_t field_id, uint32_t type) {
encode_varint_raw(pos PROTO_ENCODE_DEBUG_ARG, (field_id << 3) | type);
}
/// Write a single precomputed tag byte. Tag must be < 128.
[[nodiscard]] static inline uint8_t *ESPHOME_ALWAYS_INLINE
write_raw_byte(uint8_t *__restrict__ pos PROTO_ENCODE_DEBUG_PARAM, uint8_t b) {
static inline void ESPHOME_ALWAYS_INLINE write_raw_byte(uint8_t *__restrict__ &pos PROTO_ENCODE_DEBUG_PARAM,
uint8_t b) {
PROTO_ENCODE_CHECK_BOUNDS(pos, 1);
*pos++ = b;
return pos;
}
/// Reserve one byte for later backpatch (e.g., sub-message length).
/// Advances pos past the reserved byte without writing a value.
[[nodiscard]] static inline uint8_t *ESPHOME_ALWAYS_INLINE
reserve_byte(uint8_t *__restrict__ pos PROTO_ENCODE_DEBUG_PARAM) {
static inline void ESPHOME_ALWAYS_INLINE reserve_byte(uint8_t *__restrict__ &pos PROTO_ENCODE_DEBUG_PARAM) {
PROTO_ENCODE_CHECK_BOUNDS(pos, 1);
return pos + 1;
pos++;
}
/// Write raw bytes to the buffer (no tag, no length prefix).
[[nodiscard]] static inline uint8_t *ESPHOME_ALWAYS_INLINE
encode_raw(uint8_t *__restrict__ pos PROTO_ENCODE_DEBUG_PARAM, const void *data, size_t len) {
static inline void ESPHOME_ALWAYS_INLINE encode_raw(uint8_t *__restrict__ &pos PROTO_ENCODE_DEBUG_PARAM,
const void *data, size_t len) {
PROTO_ENCODE_CHECK_BOUNDS(pos, len);
std::memcpy(pos, data, len);
return pos + len;
pos += len;
}
/// Encode tag + 1-byte length + raw string data. For strings with max_data_length < 128.
/// Tag must be a single-byte varint (< 128). Always encodes (no zero check).
[[nodiscard]] static inline uint8_t *encode_short_string_force(uint8_t *__restrict__ pos PROTO_ENCODE_DEBUG_PARAM,
uint8_t tag, const StringRef &ref) {
static inline void encode_short_string_force(uint8_t *__restrict__ &pos PROTO_ENCODE_DEBUG_PARAM, uint8_t tag,
const StringRef &ref) {
#ifdef ESPHOME_DEBUG_API
assert(ref.size() < 128 && "encode_short_string_force: string exceeds max_data_length < 128");
#endif
@@ -419,191 +402,137 @@ class ProtoEncode {
pos[0] = tag;
pos[1] = static_cast<uint8_t>(ref.size());
std::memcpy(pos + 2, ref.c_str(), ref.size());
return pos + 2 + ref.size();
pos += 2 + ref.size();
}
/// Write a precomputed tag byte + 32-bit value. Outlined on embedded: one copy beats inline stores per field.
[[nodiscard]] static PROTO_OUTLINE_FOR_SIZE uint8_t *write_tag_and_fixed32(
uint8_t *__restrict__ pos PROTO_ENCODE_DEBUG_PARAM, uint8_t tag, uint32_t value) {
/// Write a precomputed tag byte + 32-bit value in one operation.
static inline void ESPHOME_ALWAYS_INLINE write_tag_and_fixed32(uint8_t *__restrict__ &pos PROTO_ENCODE_DEBUG_PARAM,
uint8_t tag, uint32_t value) {
PROTO_ENCODE_CHECK_BOUNDS(pos, 5);
pos[0] = tag;
write_fixed32_le(pos + 1, value);
return pos + 5;
#if __BYTE_ORDER__ == __ORDER_LITTLE_ENDIAN__
std::memcpy(pos + 1, &value, 4);
#else
pos[1] = static_cast<uint8_t>(value & 0xFF);
pos[2] = static_cast<uint8_t>((value >> 8) & 0xFF);
pos[3] = static_cast<uint8_t>((value >> 16) & 0xFF);
pos[4] = static_cast<uint8_t>((value >> 24) & 0xFF);
#endif
pos += 5;
}
[[nodiscard]] static inline uint8_t *encode_string_force(uint8_t *__restrict__ pos PROTO_ENCODE_DEBUG_PARAM,
uint32_t field_id, const char *string, size_t len) {
pos = encode_field_raw(pos PROTO_ENCODE_DEBUG_ARG, field_id, 2); // type 2: Length-delimited string
static inline void encode_string(uint8_t *__restrict__ &pos PROTO_ENCODE_DEBUG_PARAM, uint32_t field_id,
const char *string, size_t len, bool force = false) {
if (len == 0 && !force)
return;
encode_field_raw(pos PROTO_ENCODE_DEBUG_ARG, field_id, 2); // type 2: Length-delimited string
// NOLINTNEXTLINE(readability-inconsistent-ifelse-braces) -- false positive on [[likely]] attribute
if (len < VARINT_MAX_1_BYTE) [[likely]] {
PROTO_ENCODE_CHECK_BOUNDS(pos, 1 + len);
*pos++ = static_cast<uint8_t>(len);
} else {
pos = encode_varint_raw_loop(pos PROTO_ENCODE_DEBUG_ARG, len);
encode_varint_raw_loop(pos PROTO_ENCODE_DEBUG_ARG, len);
PROTO_ENCODE_CHECK_BOUNDS(pos, len);
}
std::memcpy(pos, string, len);
return pos + len;
pos += len;
}
[[nodiscard]] static inline uint8_t *encode_string(uint8_t *__restrict__ pos PROTO_ENCODE_DEBUG_PARAM,
uint32_t field_id, const char *string, size_t len) {
if (len == 0)
return pos;
return encode_string_force(pos PROTO_ENCODE_DEBUG_ARG, field_id, string, len);
static inline void encode_string(uint8_t *__restrict__ &pos PROTO_ENCODE_DEBUG_PARAM, uint32_t field_id,
const std::string &value, bool force = false) {
encode_string(pos PROTO_ENCODE_DEBUG_ARG, field_id, value.data(), value.size(), force);
}
[[nodiscard]] static inline uint8_t *encode_string_force(uint8_t *__restrict__ pos PROTO_ENCODE_DEBUG_PARAM,
uint32_t field_id, const std::string &value) {
return encode_string_force(pos PROTO_ENCODE_DEBUG_ARG, field_id, value.data(), value.size());
static inline void encode_string(uint8_t *__restrict__ &pos PROTO_ENCODE_DEBUG_PARAM, uint32_t field_id,
const StringRef &ref, bool force = false) {
encode_string(pos PROTO_ENCODE_DEBUG_ARG, field_id, ref.c_str(), ref.size(), force);
}
[[nodiscard]] static inline uint8_t *encode_string(uint8_t *__restrict__ pos PROTO_ENCODE_DEBUG_PARAM,
uint32_t field_id, const StringRef &ref) {
return encode_string(pos PROTO_ENCODE_DEBUG_ARG, field_id, ref.c_str(), ref.size());
static inline void encode_bytes(uint8_t *__restrict__ &pos PROTO_ENCODE_DEBUG_PARAM, uint32_t field_id,
const uint8_t *data, size_t len, bool force = false) {
encode_string(pos PROTO_ENCODE_DEBUG_ARG, field_id, reinterpret_cast<const char *>(data), len, force);
}
[[nodiscard]] static inline uint8_t *encode_string_force(uint8_t *__restrict__ pos PROTO_ENCODE_DEBUG_PARAM,
uint32_t field_id, const StringRef &ref) {
return encode_string_force(pos PROTO_ENCODE_DEBUG_ARG, field_id, ref.c_str(), ref.size());
static inline void encode_uint32(uint8_t *__restrict__ &pos PROTO_ENCODE_DEBUG_PARAM, uint32_t field_id,
uint32_t value, bool force = false) {
if (value == 0 && !force)
return;
encode_field_raw(pos PROTO_ENCODE_DEBUG_ARG, field_id, 0);
encode_varint_raw(pos PROTO_ENCODE_DEBUG_ARG, value);
}
[[nodiscard]] static inline uint8_t *encode_bytes(uint8_t *__restrict__ pos PROTO_ENCODE_DEBUG_PARAM,
uint32_t field_id, const uint8_t *data, size_t len) {
return encode_string(pos PROTO_ENCODE_DEBUG_ARG, field_id, reinterpret_cast<const char *>(data), len);
static inline void encode_uint64(uint8_t *__restrict__ &pos PROTO_ENCODE_DEBUG_PARAM, uint32_t field_id,
uint64_t value, bool force = false) {
if (value == 0 && !force)
return;
encode_field_raw(pos PROTO_ENCODE_DEBUG_ARG, field_id, 0);
encode_varint_raw_64(pos PROTO_ENCODE_DEBUG_ARG, value);
}
[[nodiscard]] static inline uint8_t *encode_bytes_force(uint8_t *__restrict__ pos PROTO_ENCODE_DEBUG_PARAM,
uint32_t field_id, const uint8_t *data, size_t len) {
return encode_string_force(pos PROTO_ENCODE_DEBUG_ARG, field_id, reinterpret_cast<const char *>(data), len);
}
[[nodiscard]] static inline uint8_t *encode_uint32_force(uint8_t *__restrict__ pos PROTO_ENCODE_DEBUG_PARAM,
uint32_t field_id, uint32_t value) {
pos = encode_field_raw(pos PROTO_ENCODE_DEBUG_ARG, field_id, 0);
return encode_varint_raw(pos PROTO_ENCODE_DEBUG_ARG, value);
}
[[nodiscard]] static inline uint8_t *encode_uint32(uint8_t *__restrict__ pos PROTO_ENCODE_DEBUG_PARAM,
uint32_t field_id, uint32_t value) {
if (value == 0)
return pos;
return encode_uint32_force(pos PROTO_ENCODE_DEBUG_ARG, field_id, value);
}
[[nodiscard]] static inline uint8_t *encode_uint64_force(uint8_t *__restrict__ pos PROTO_ENCODE_DEBUG_PARAM,
uint32_t field_id, uint64_t value) {
pos = encode_field_raw(pos PROTO_ENCODE_DEBUG_ARG, field_id, 0);
return encode_varint_raw_64(pos PROTO_ENCODE_DEBUG_ARG, value);
}
[[nodiscard]] static inline uint8_t *encode_uint64(uint8_t *__restrict__ pos PROTO_ENCODE_DEBUG_PARAM,
uint32_t field_id, uint64_t value) {
if (value == 0)
return pos;
return encode_uint64_force(pos PROTO_ENCODE_DEBUG_ARG, field_id, value);
}
[[nodiscard]] static inline uint8_t *encode_bool_force(uint8_t *__restrict__ pos PROTO_ENCODE_DEBUG_PARAM,
uint32_t field_id, bool value) {
pos = encode_field_raw(pos PROTO_ENCODE_DEBUG_ARG, field_id, 0);
static inline void encode_bool(uint8_t *__restrict__ &pos PROTO_ENCODE_DEBUG_PARAM, uint32_t field_id, bool value,
bool force = false) {
if (!value && !force)
return;
encode_field_raw(pos PROTO_ENCODE_DEBUG_ARG, field_id, 0);
PROTO_ENCODE_CHECK_BOUNDS(pos, 1);
*pos++ = value ? 0x01 : 0x00;
return pos;
}
[[nodiscard]] static inline uint8_t *encode_bool(uint8_t *__restrict__ pos PROTO_ENCODE_DEBUG_PARAM,
uint32_t field_id, bool value) {
if (!value)
return pos;
return encode_bool_force(pos PROTO_ENCODE_DEBUG_ARG, field_id, value);
}
/// Tag + fixed32 for multi-byte tags; single-byte tags use write_tag_and_fixed32.
[[nodiscard]] static PROTO_OUTLINE_FOR_SIZE uint8_t *encode_fixed32_force(
uint8_t *__restrict__ pos PROTO_ENCODE_DEBUG_PARAM, uint32_t field_id, uint32_t value) {
pos = encode_field_raw(pos PROTO_ENCODE_DEBUG_ARG, field_id, 5);
static inline void encode_fixed32(uint8_t *__restrict__ &pos PROTO_ENCODE_DEBUG_PARAM, uint32_t field_id,
uint32_t value, bool force = false) {
if (value == 0 && !force)
return;
encode_field_raw(pos PROTO_ENCODE_DEBUG_ARG, field_id, 5);
PROTO_ENCODE_CHECK_BOUNDS(pos, 4);
write_fixed32_le(pos, value);
return pos + 4;
}
[[nodiscard]] static inline uint8_t *encode_fixed32(uint8_t *__restrict__ pos PROTO_ENCODE_DEBUG_PARAM,
uint32_t field_id, uint32_t value) {
if (value == 0)
return pos;
return encode_fixed32_force(pos PROTO_ENCODE_DEBUG_ARG, field_id, value);
#if __BYTE_ORDER__ == __ORDER_LITTLE_ENDIAN__
std::memcpy(pos, &value, 4);
pos += 4;
#else
*pos++ = (value >> 0) & 0xFF;
*pos++ = (value >> 8) & 0xFF;
*pos++ = (value >> 16) & 0xFF;
*pos++ = (value >> 24) & 0xFF;
#endif
}
// NOTE: Wire type 1 (64-bit fixed: double, fixed64, sfixed64) is intentionally
// not supported to reduce overhead on embedded systems. All ESPHome devices are
// 32-bit microcontrollers where 64-bit operations are expensive. If 64-bit support
// is needed in the future, the necessary encoding/decoding functions must be added.
[[nodiscard]] static inline uint8_t *encode_float(uint8_t *__restrict__ pos PROTO_ENCODE_DEBUG_PARAM,
uint32_t field_id, float value) {
return encode_fixed32(pos PROTO_ENCODE_DEBUG_ARG, field_id, float_to_raw(value));
static inline void encode_float(uint8_t *__restrict__ &pos PROTO_ENCODE_DEBUG_PARAM, uint32_t field_id, float value,
bool force = false) {
uint32_t raw = float_to_raw(value);
if (raw == 0 && !force)
return;
encode_fixed32(pos PROTO_ENCODE_DEBUG_ARG, field_id, raw);
}
[[nodiscard]] static inline uint8_t *encode_float_force(uint8_t *__restrict__ pos PROTO_ENCODE_DEBUG_PARAM,
uint32_t field_id, float value) {
return encode_fixed32_force(pos PROTO_ENCODE_DEBUG_ARG, field_id, float_to_raw(value));
}
[[nodiscard]] static inline uint8_t *encode_int32_force(uint8_t *__restrict__ pos PROTO_ENCODE_DEBUG_PARAM,
uint32_t field_id, int32_t value) {
static inline void encode_int32(uint8_t *__restrict__ &pos PROTO_ENCODE_DEBUG_PARAM, uint32_t field_id, int32_t value,
bool force = false) {
if (value < 0) {
// negative int32 is always 10 byte long
return encode_uint64_force(pos PROTO_ENCODE_DEBUG_ARG, field_id, static_cast<uint64_t>(value));
encode_uint64(pos PROTO_ENCODE_DEBUG_ARG, field_id, static_cast<uint64_t>(value), force);
return;
}
return encode_uint32_force(pos PROTO_ENCODE_DEBUG_ARG, field_id, static_cast<uint32_t>(value));
encode_uint32(pos PROTO_ENCODE_DEBUG_ARG, field_id, static_cast<uint32_t>(value), force);
}
[[nodiscard]] static inline uint8_t *encode_int32(uint8_t *__restrict__ pos PROTO_ENCODE_DEBUG_PARAM,
uint32_t field_id, int32_t value) {
if (value == 0)
return pos;
return encode_int32_force(pos PROTO_ENCODE_DEBUG_ARG, field_id, value);
static inline void encode_int64(uint8_t *__restrict__ &pos PROTO_ENCODE_DEBUG_PARAM, uint32_t field_id, int64_t value,
bool force = false) {
encode_uint64(pos PROTO_ENCODE_DEBUG_ARG, field_id, static_cast<uint64_t>(value), force);
}
[[nodiscard]] static inline uint8_t *encode_int64(uint8_t *__restrict__ pos PROTO_ENCODE_DEBUG_PARAM,
uint32_t field_id, int64_t value) {
return encode_uint64(pos PROTO_ENCODE_DEBUG_ARG, field_id, static_cast<uint64_t>(value));
static inline void encode_sint32(uint8_t *__restrict__ &pos PROTO_ENCODE_DEBUG_PARAM, uint32_t field_id,
int32_t value, bool force = false) {
encode_uint32(pos PROTO_ENCODE_DEBUG_ARG, field_id, encode_zigzag32(value), force);
}
[[nodiscard]] static inline uint8_t *encode_int64_force(uint8_t *__restrict__ pos PROTO_ENCODE_DEBUG_PARAM,
uint32_t field_id, int64_t value) {
return encode_uint64_force(pos PROTO_ENCODE_DEBUG_ARG, field_id, static_cast<uint64_t>(value));
static inline void encode_sint64(uint8_t *__restrict__ &pos PROTO_ENCODE_DEBUG_PARAM, uint32_t field_id,
int64_t value, bool force = false) {
encode_uint64(pos PROTO_ENCODE_DEBUG_ARG, field_id, encode_zigzag64(value), force);
}
[[nodiscard]] static inline uint8_t *encode_sint32(uint8_t *__restrict__ pos PROTO_ENCODE_DEBUG_PARAM,
uint32_t field_id, int32_t value) {
return encode_uint32(pos PROTO_ENCODE_DEBUG_ARG, field_id, encode_zigzag32(value));
}
[[nodiscard]] static inline uint8_t *encode_sint32_force(uint8_t *__restrict__ pos PROTO_ENCODE_DEBUG_PARAM,
uint32_t field_id, int32_t value) {
return encode_uint32_force(pos PROTO_ENCODE_DEBUG_ARG, field_id, encode_zigzag32(value));
}
[[nodiscard]] static inline uint8_t *encode_sint64(uint8_t *__restrict__ pos PROTO_ENCODE_DEBUG_PARAM,
uint32_t field_id, int64_t value) {
return encode_uint64(pos PROTO_ENCODE_DEBUG_ARG, field_id, encode_zigzag64(value));
}
[[nodiscard]] static inline uint8_t *encode_sint64_force(uint8_t *__restrict__ pos PROTO_ENCODE_DEBUG_PARAM,
uint32_t field_id, int64_t value) {
return encode_uint64_force(pos PROTO_ENCODE_DEBUG_ARG, field_id, encode_zigzag64(value));
}
/// Sub-message encoding: sync pos to buffer, delegate, read the cursor back.
/// Sub-message encoding: sync pos to buffer, delegate, get pos from return value.
template<typename T>
[[nodiscard]] static inline uint8_t *encode_sub_message(uint8_t *__restrict__ pos PROTO_ENCODE_DEBUG_PARAM,
ProtoWriteBuffer &buffer, uint32_t field_id, const T &value) {
static inline void encode_sub_message(uint8_t *__restrict__ &pos PROTO_ENCODE_DEBUG_PARAM, ProtoWriteBuffer &buffer,
uint32_t field_id, const T &value) {
buffer.set_pos(pos);
buffer.encode_sub_message(field_id, value);
return buffer.get_pos();
pos = buffer.get_pos();
}
template<typename T>
[[nodiscard]] static inline uint8_t *encode_optional_sub_message(uint8_t *__restrict__ pos PROTO_ENCODE_DEBUG_PARAM,
ProtoWriteBuffer &buffer, uint32_t field_id,
const T &value) {
static inline void encode_optional_sub_message(uint8_t *__restrict__ &pos PROTO_ENCODE_DEBUG_PARAM,
ProtoWriteBuffer &buffer, uint32_t field_id, const T &value) {
buffer.set_pos(pos);
buffer.encode_optional_sub_message(field_id, value);
return buffer.get_pos();
}
private:
/// Unaligned little endian store of four bytes: byte stores where the outlined helper lives (ESP-IDF, ARM
/// without unaligned access), otherwise a memcpy the compiler folds into one store. Callers bounds check
/// and advance the cursor themselves.
static inline void ESPHOME_ALWAYS_INLINE write_fixed32_le(uint8_t *__restrict__ pos, uint32_t value) {
if constexpr (PROTO_FIXED32_BYTE_STORES) {
// Spelled out so the outlined helper does not itself become a memcpy call
pos[0] = static_cast<uint8_t>(value);
pos[1] = static_cast<uint8_t>(value >> 8);
pos[2] = static_cast<uint8_t>(value >> 16);
pos[3] = static_cast<uint8_t>(value >> 24);
} else {
const uint32_t le = convert_little_endian(value);
__builtin_memcpy(pos, &le, 4);
}
pos = buffer.get_pos();
}
};
#undef PROTO_OUTLINE_FOR_SIZE
#undef PROTO_FIXED32_BYTE_STORES
#ifdef HAS_PROTO_MESSAGE_DUMP
/**
@@ -695,12 +624,11 @@ class DumpBuffer {
class ProtoMessage {
public:
// Non-virtual defaults for messages with no fields; generated classes hide all four. The
// static encode_msg/calc_size_msg take const void * so &T::encode_msg needs no thunk.
static uint8_t *encode_msg(const void *self, ProtoWriteBuffer &buffer PROTO_ENCODE_DEBUG_PARAM) {
return buffer.get_pos();
}
static uint32_t calc_size_msg(const void *self) { return 0; }
// Non-virtual defaults for messages with no fields.
// Concrete message classes hide these with their own implementations.
// All call sites use templates to preserve the concrete type, so virtual
// dispatch is not needed. This eliminates per-message vtable entries for
// encode/calculate_size, saving ~1.3 KB of flash across all message types.
uint8_t *encode(ProtoWriteBuffer &buffer PROTO_ENCODE_DEBUG_PARAM) const { return buffer.get_pos(); }
uint32_t calculate_size() const { return 0; }
#ifdef HAS_PROTO_MESSAGE_DUMP
@@ -735,10 +663,10 @@ class ProtoDecodableMessage : public ProtoMessage {
protected:
~ProtoDecodableMessage() = default;
/// Store one decoded field; \p scalar is the varint or fixed32 value, or the length of the
/// length-delimited payload at \p data. An unknown field or wrong wire type matches no case and is skipped.
/// Three register arguments keep the decode loop free of spills.
virtual void decode_field(uint32_t tag, const uint8_t *data, proto_varint_value_t scalar) {}
virtual bool decode_varint(uint32_t field_id, proto_varint_value_t value) { return false; }
virtual bool decode_length(uint32_t field_id, ProtoLengthDelimited value) { return false; }
virtual bool decode_32bit(uint32_t field_id, Proto32Bit value) { return false; }
// NOTE: decode_64bit removed - wire type 1 not supported
};
class ProtoSize {
@@ -864,7 +792,7 @@ class ProtoSize {
* @return The number of bytes needed to encode the field ID and wire type
*/
static constexpr uint32_t field(uint32_t field_id, uint32_t type) {
uint32_t tag = proto_tag(field_id, type & WIRE_TYPE_MASK);
uint32_t tag = (field_id << 3) | (type & WIRE_TYPE_MASK);
return varint(tag);
}
@@ -948,14 +876,24 @@ class ProtoSize {
// Implementation of methods that depend on ProtoSize being fully defined
// Encode thunk — converts void* back to concrete type for direct encode() call
template<typename T> uint8_t *proto_encode_msg(const void *msg, ProtoWriteBuffer &buf PROTO_ENCODE_DEBUG_PARAM) {
return static_cast<const T *>(msg)->encode(buf PROTO_ENCODE_DEBUG_ARG);
}
// Thin template wrapper; delegates to non-template core in proto.cpp.
template<typename T> inline void ProtoWriteBuffer::encode_sub_message(uint32_t field_id, const T &value) {
this->encode_sub_message(field_id, &value, &T::encode_msg);
this->encode_sub_message(field_id, &value, &proto_encode_msg<T>);
}
// Thin template wrapper; delegates to non-template core.
template<typename T> inline void ProtoWriteBuffer::encode_optional_sub_message(uint32_t field_id, const T &value) {
this->encode_optional_sub_message(field_id, T::calc_size_msg(&value), &value, &T::encode_msg);
this->encode_optional_sub_message(field_id, value.calculate_size(), &value, &proto_encode_msg<T>);
}
// Template decode_to_message - preserves concrete type so decode() resolves statically
template<typename T> void ProtoLengthDelimited::decode_to_message(T &msg) const {
msg.decode(this->value_, this->length_);
}
template<typename T> const char *proto_enum_to_string(T value);
+206 -154
View File
@@ -9,6 +9,10 @@ namespace esphome::atm90e32 {
static const char *const TAG = "atm90e32";
static const LogString *offset_calibration_name(bool power_offsets) {
return power_offsets ? LOG_STR("Power offset") : LOG_STR("Offset");
}
static uint32_t pref_hash(const char *prefix, const char *name_space) {
auto hash = fnv1_hash(prefix);
return fnv1_hash_extend(hash, name_space);
@@ -203,13 +207,12 @@ void ATM90E32Component::setup() {
// Initialize flash storage for power offset calibrations
uint32_t po_hash = pref_hash("_power_offset_calibration_", cs);
this->power_offset_pref_ = global_preferences->make_preference<PowerOffsetCalibration[3]>(po_hash, true);
this->power_offset_pref_ = global_preferences->make_preference<OffsetCalibration[3]>(po_hash, true);
bool migrated_power_offset = false;
if (has_distinct_legacy_namespace) {
uint32_t legacy_po_hash = pref_hash("_power_offset_calibration_", legacy_cs);
auto legacy_power_offset_pref =
global_preferences->make_preference<PowerOffsetCalibration[3]>(legacy_po_hash, true);
PowerOffsetCalibration power_offset_data[3]{};
auto legacy_power_offset_pref = global_preferences->make_preference<OffsetCalibration[3]>(legacy_po_hash, true);
OffsetCalibration power_offset_data[3]{};
int migration_status =
migrate_legacy_pref_if_needed(this->power_offset_pref_, legacy_power_offset_pref, &power_offset_data);
migrated_power_offset = migration_status > 0;
@@ -224,20 +227,20 @@ void ATM90E32Component::setup() {
global_preferences->sync();
}
this->restore_offset_calibrations_();
this->restore_power_offset_calibrations_();
this->restore_offset_calibrations_(OffsetCalibrationType::OFFSET_CALIBRATION_TYPE_VOLTAGE_CURRENT);
this->restore_offset_calibrations_(OffsetCalibrationType::OFFSET_CALIBRATION_TYPE_POWER);
} else {
ESP_LOGI(TAG, "[CALIBRATION][%s] Power & Voltage/Current offset calibration is disabled. Using config file values.",
cs);
for (uint8_t phase = 0; phase < 3; ++phase) {
this->write16_(this->voltage_offset_registers[phase],
static_cast<uint16_t>(this->offset_phase_[phase].voltage_offset_));
static_cast<uint16_t>(this->offset_phase_[phase].first_offset));
this->write16_(this->current_offset_registers[phase],
static_cast<uint16_t>(this->offset_phase_[phase].current_offset_));
static_cast<uint16_t>(this->offset_phase_[phase].second_offset));
this->write16_(this->power_offset_registers[phase],
static_cast<uint16_t>(this->power_offset_phase_[phase].active_power_offset));
static_cast<uint16_t>(this->power_offset_phase_[phase].first_offset));
this->write16_(this->reactive_power_offset_registers[phase],
static_cast<uint16_t>(this->power_offset_phase_[phase].reactive_power_offset));
static_cast<uint16_t>(this->power_offset_phase_[phase].second_offset));
}
}
@@ -317,8 +320,8 @@ void ATM90E32Component::log_calibration_status_() {
cs);
for (uint8_t phase = 0; phase < 3; ++phase) {
ESP_LOGW(TAG, "[CALIBRATION][%s] | %c | %6d | %6d | %6d | %6d |", cs, 'A' + phase,
this->config_offset_phase_[phase].voltage_offset_, this->offset_phase_[phase].voltage_offset_,
this->config_offset_phase_[phase].current_offset_, this->offset_phase_[phase].current_offset_);
this->config_offset_phase_[phase].first_offset, this->offset_phase_[phase].first_offset,
this->config_offset_phase_[phase].second_offset, this->offset_phase_[phase].second_offset);
}
ESP_LOGW(TAG,
"[CALIBRATION][%s] ===============================================================================", cs);
@@ -335,10 +338,8 @@ void ATM90E32Component::log_calibration_status_() {
cs);
for (uint8_t phase = 0; phase < 3; ++phase) {
ESP_LOGW(TAG, "[CALIBRATION][%s] | %c | %6d | %6d | %6d | %6d |", cs, 'A' + phase,
this->config_power_offset_phase_[phase].active_power_offset,
this->power_offset_phase_[phase].active_power_offset,
this->config_power_offset_phase_[phase].reactive_power_offset,
this->power_offset_phase_[phase].reactive_power_offset);
this->config_power_offset_phase_[phase].first_offset, this->power_offset_phase_[phase].first_offset,
this->config_power_offset_phase_[phase].second_offset, this->power_offset_phase_[phase].second_offset);
}
ESP_LOGW(TAG,
"[CALIBRATION][%s] ===============================================================================", cs);
@@ -372,7 +373,7 @@ void ATM90E32Component::log_calibration_status_() {
ESP_LOGI(TAG, "[CALIBRATION][%s] --------------------------------------------------------------", cs);
for (uint8_t phase = 0; phase < 3; phase++) {
ESP_LOGI(TAG, "[CALIBRATION][%s] | %c | %6d | %6d |", cs, 'A' + phase,
this->offset_phase_[phase].voltage_offset_, this->offset_phase_[phase].current_offset_);
this->offset_phase_[phase].first_offset, this->offset_phase_[phase].second_offset);
}
ESP_LOGI(TAG, "[CALIBRATION][%s] ==============================================================\\n", cs);
}
@@ -385,8 +386,7 @@ void ATM90E32Component::log_calibration_status_() {
ESP_LOGI(TAG, "[CALIBRATION][%s] ---------------------------------------------------------------------", cs);
for (uint8_t phase = 0; phase < 3; phase++) {
ESP_LOGI(TAG, "[CALIBRATION][%s] | %c | %6d | %6d |", cs, 'A' + phase,
this->power_offset_phase_[phase].active_power_offset,
this->power_offset_phase_[phase].reactive_power_offset);
this->power_offset_phase_[phase].first_offset, this->power_offset_phase_[phase].second_offset);
}
ESP_LOGI(TAG, "[CALIBRATION][%s] =====================================================================\n", cs);
}
@@ -756,36 +756,68 @@ void ATM90E32Component::save_gain_calibration_to_memory_() {
}
}
void ATM90E32Component::save_offset_calibration_to_memory_() {
void ATM90E32Component::finish_offset_calibration_(const OffsetCalibration (&previous)[3], bool previous_restored,
bool previous_using_saved, OffsetCalibrationType type) {
const bool power_offsets = type == OffsetCalibrationType::OFFSET_CALIBRATION_TYPE_POWER;
const char *cs = this->get_calibration_id_();
bool success = this->offset_pref_.save(&this->offset_phase_);
global_preferences->sync();
if (success) {
this->using_saved_calibrations_ = true;
this->restored_offset_calibration_ = true;
for (bool &phase : this->offset_calibration_mismatch_)
phase = false;
ESP_LOGI(TAG, "[CALIBRATION][%s] Offset calibration saved to memory.", cs);
} else {
this->using_saved_calibrations_ = false;
ESP_LOGE(TAG, "[CALIBRATION][%s] Failed to save offset calibration to memory!", cs);
}
}
const LogString *name = offset_calibration_name(power_offsets);
OffsetCalibration(*offsets)[3] = power_offsets ? &this->power_offset_phase_ : &this->offset_phase_;
ESPPreferenceObject *preference = power_offsets ? &this->power_offset_pref_ : &this->offset_pref_;
bool *has_stored =
power_offsets ? &this->has_stored_power_offset_calibration_ : &this->has_stored_offset_calibration_;
bool *restored = power_offsets ? &this->restored_power_offset_calibration_ : &this->restored_offset_calibration_;
bool *mismatches = power_offsets ? this->power_offset_calibration_mismatch_ : this->offset_calibration_mismatch_;
void ATM90E32Component::save_power_offset_calibration_to_memory_() {
const char *cs = this->get_calibration_id_();
bool success = this->power_offset_pref_.save(&this->power_offset_phase_);
global_preferences->sync();
if (success) {
this->using_saved_calibrations_ = true;
this->restored_power_offset_calibration_ = true;
for (bool &phase : this->power_offset_calibration_mismatch_)
phase = false;
ESP_LOGI(TAG, "[CALIBRATION][%s] Power offset calibration saved to memory.", cs);
} else {
this->using_saved_calibrations_ = false;
ESP_LOGE(TAG, "[CALIBRATION][%s] Failed to save power offset calibration to memory!", cs);
const bool writes_verified = this->verify_offset_writes_(type);
bool saved = false;
bool synced = false;
if (writes_verified) {
saved = preference->save(offsets);
synced = global_preferences->sync();
}
if (writes_verified && saved && synced) {
this->using_saved_calibrations_ = true;
*has_stored = true;
*restored = true;
for (uint8_t phase = 0; phase < 3; phase++)
mismatches[phase] = false;
ESP_LOGI(TAG, "[CALIBRATION][%s] %s calibration saved to memory. %s calibration completed and verified.", cs,
LOG_STR_ARG(name), LOG_STR_ARG(name));
return;
}
if (writes_verified) {
ESP_LOGE(TAG, "[CALIBRATION][%s] Failed to save %s calibration to memory!", cs, LOG_STR_ARG(name));
}
for (uint8_t phase = 0; phase < 3; phase++) {
this->write_offsets_to_registers_(phase, previous[phase].first_offset, previous[phase].second_offset, type);
}
const bool rollback_verified = this->verify_offset_writes_(type);
bool rollback_persisted = false;
if (writes_verified) {
OffsetCalibration rollback[3]{};
prepare_offset_rollback(previous, previous_restored, rollback);
const bool rollback_saved = preference->save(&rollback);
const bool rollback_synced = global_preferences->sync();
rollback_persisted = rollback_saved && rollback_synced;
if (!rollback_saved || !rollback_synced) {
ESP_LOGE(TAG, "[CALIBRATION][%s] Failed to persist restored %s calibration values!", cs, LOG_STR_ARG(name));
}
}
*restored = previous_restored;
if (rollback_persisted)
*has_stored = previous_restored;
this->using_saved_calibrations_ = previous_using_saved;
if (!rollback_verified) {
ESP_LOGE(TAG, "[CALIBRATION][%s] %s calibration failed; rollback readback verification failed.", cs,
LOG_STR_ARG(name));
return;
}
ESP_LOGE(TAG, "[CALIBRATION][%s] %s calibration failed; previous values restored.", cs, LOG_STR_ARG(name));
}
void ATM90E32Component::run_offset_calibrations() {
@@ -803,11 +835,16 @@ void ATM90E32Component::run_offset_calibrations() {
ESP_LOGI(TAG, "[CALIBRATION][%s] | Phase | offset_voltage | offset_current |", cs);
ESP_LOGI(TAG, "[CALIBRATION][%s] ------------------------------------------------------------------", cs);
OffsetCalibration previous_offsets[3] = {this->offset_phase_[0], this->offset_phase_[1], this->offset_phase_[2]};
const bool previous_restored = this->restored_offset_calibration_;
const bool previous_using_saved = this->using_saved_calibrations_;
for (uint8_t phase = 0; phase < 3; phase++) {
int16_t voltage_offset = calibrate_offset(phase, true);
int16_t current_offset = calibrate_offset(phase, false);
this->write_offsets_to_registers_(phase, voltage_offset, current_offset);
this->write_offsets_to_registers_(phase, voltage_offset, current_offset,
OffsetCalibrationType::OFFSET_CALIBRATION_TYPE_VOLTAGE_CURRENT);
ESP_LOGI(TAG, "[CALIBRATION][%s] | %c | %6d | %6d |", cs, 'A' + phase, voltage_offset,
current_offset);
@@ -815,7 +852,8 @@ void ATM90E32Component::run_offset_calibrations() {
ESP_LOGI(TAG, "[CALIBRATION][%s] ==================================================================\n", cs);
this->save_offset_calibration_to_memory_();
this->finish_offset_calibration_(previous_offsets, previous_restored, previous_using_saved,
OffsetCalibrationType::OFFSET_CALIBRATION_TYPE_VOLTAGE_CURRENT);
}
void ATM90E32Component::run_power_offset_calibrations() {
@@ -834,18 +872,25 @@ void ATM90E32Component::run_power_offset_calibrations() {
ESP_LOGI(TAG, "[CALIBRATION][%s] | Phase | offset_active_power | offset_reactive_power |", cs);
ESP_LOGI(TAG, "[CALIBRATION][%s] ---------------------------------------------------------------------", cs);
OffsetCalibration previous_offsets[3] = {this->power_offset_phase_[0], this->power_offset_phase_[1],
this->power_offset_phase_[2]};
const bool previous_restored = this->restored_power_offset_calibration_;
const bool previous_using_saved = this->using_saved_calibrations_;
for (uint8_t phase = 0; phase < 3; ++phase) {
int16_t active_offset = calibrate_power_offset(phase, false);
int16_t reactive_offset = calibrate_power_offset(phase, true);
this->write_power_offsets_to_registers_(phase, active_offset, reactive_offset);
this->write_offsets_to_registers_(phase, active_offset, reactive_offset,
OffsetCalibrationType::OFFSET_CALIBRATION_TYPE_POWER);
ESP_LOGI(TAG, "[CALIBRATION][%s] | %c | %6d | %6d |", cs, 'A' + phase, active_offset,
reactive_offset);
}
ESP_LOGI(TAG, "[CALIBRATION][%s] =====================================================================\n", cs);
this->save_power_offset_calibration_to_memory_();
this->finish_offset_calibration_(previous_offsets, previous_restored, previous_using_saved,
OffsetCalibrationType::OFFSET_CALIBRATION_TYPE_POWER);
}
void ATM90E32Component::write_gains_to_registers_() {
@@ -859,35 +904,26 @@ void ATM90E32Component::write_gains_to_registers_() {
this->write16_(ATM90E32_REGISTER_CFGREGACCEN, 0x0000);
}
void ATM90E32Component::write_offsets_to_registers_(uint8_t phase, int16_t voltage_offset, int16_t current_offset) {
// Save to runtime
this->offset_phase_[phase].voltage_offset_ = voltage_offset;
this->phase_[phase].voltage_offset_ = voltage_offset;
void ATM90E32Component::write_offsets_to_registers_(uint8_t phase, int16_t first_offset, int16_t second_offset,
OffsetCalibrationType type) {
const bool power_offsets = type == OffsetCalibrationType::OFFSET_CALIBRATION_TYPE_POWER;
OffsetCalibration &offsets = power_offsets ? this->power_offset_phase_[phase] : this->offset_phase_[phase];
offsets.first_offset = first_offset;
offsets.second_offset = second_offset;
if (power_offsets) {
this->phase_[phase].active_power_offset_ = first_offset;
this->phase_[phase].reactive_power_offset_ = second_offset;
} else {
this->phase_[phase].voltage_offset_ = first_offset;
this->phase_[phase].current_offset_ = second_offset;
}
// Save to flash-storable struct
this->offset_phase_[phase].current_offset_ = current_offset;
this->phase_[phase].current_offset_ = current_offset;
// Write to registers
const uint16_t *first_registers = power_offsets ? this->power_offset_registers : this->voltage_offset_registers;
const uint16_t *second_registers =
power_offsets ? this->reactive_power_offset_registers : this->current_offset_registers;
this->write16_(ATM90E32_REGISTER_CFGREGACCEN, 0x55AA);
this->write16_(voltage_offset_registers[phase], static_cast<uint16_t>(voltage_offset));
this->write16_(current_offset_registers[phase], static_cast<uint16_t>(current_offset));
this->write16_(ATM90E32_REGISTER_CFGREGACCEN, 0x0000);
}
void ATM90E32Component::write_power_offsets_to_registers_(uint8_t phase, int16_t p_offset, int16_t q_offset) {
// Save to runtime
this->phase_[phase].active_power_offset_ = p_offset;
this->phase_[phase].reactive_power_offset_ = q_offset;
// Save to flash-storable struct
this->power_offset_phase_[phase].active_power_offset = p_offset;
this->power_offset_phase_[phase].reactive_power_offset = q_offset;
// Write to registers
this->write16_(ATM90E32_REGISTER_CFGREGACCEN, 0x55AA);
this->write16_(this->power_offset_registers[phase], static_cast<uint16_t>(p_offset));
this->write16_(this->reactive_power_offset_registers[phase], static_cast<uint16_t>(q_offset));
this->write16_(first_registers[phase], static_cast<uint16_t>(first_offset));
this->write16_(second_registers[phase], static_cast<uint16_t>(second_offset));
this->write16_(ATM90E32_REGISTER_CFGREGACCEN, 0x0000);
}
@@ -947,89 +983,78 @@ void ATM90E32Component::restore_gain_calibrations_() {
ESP_LOGW(TAG, "[CALIBRATION][%s] No stored gain calibrations found. Using config file values.", cs);
}
void ATM90E32Component::restore_offset_calibrations_() {
void ATM90E32Component::restore_offset_calibrations_(OffsetCalibrationType type) {
const bool power_offsets = type == OffsetCalibrationType::OFFSET_CALIBRATION_TYPE_POWER;
const char *cs = this->get_calibration_id_();
const LogString *name = power_offsets ? LOG_STR("power offset") : LOG_STR("offset");
OffsetCalibration(*offsets)[3] = power_offsets ? &this->power_offset_phase_ : &this->offset_phase_;
OffsetCalibration(*config_offsets)[3] =
power_offsets ? &this->config_power_offset_phase_ : &this->config_offset_phase_;
ESPPreferenceObject *preference = power_offsets ? &this->power_offset_pref_ : &this->offset_pref_;
bool *has_stored =
power_offsets ? &this->has_stored_power_offset_calibration_ : &this->has_stored_offset_calibration_;
bool *restored = power_offsets ? &this->restored_power_offset_calibration_ : &this->restored_offset_calibration_;
bool *mismatches = power_offsets ? this->power_offset_calibration_mismatch_ : this->offset_calibration_mismatch_;
const bool *has_first = power_offsets ? this->has_config_active_power_offset_ : this->has_config_voltage_offset_;
const bool *has_second = power_offsets ? this->has_config_reactive_power_offset_ : this->has_config_current_offset_;
for (uint8_t i = 0; i < 3; ++i)
this->config_offset_phase_[i] = this->offset_phase_[i];
bool have_data = this->offset_pref_.load(&this->offset_phase_);
(*config_offsets)[i] = (*offsets)[i];
const bool have_data = preference->load(offsets);
bool all_zero = true;
if (have_data) {
for (auto &phase : this->offset_phase_) {
if (phase.voltage_offset_ != 0 || phase.current_offset_ != 0) {
for (const auto &phase : *offsets) {
if (phase.first_offset != 0 || phase.second_offset != 0) {
all_zero = false;
break;
}
}
}
if (have_data && !all_zero) {
this->restored_offset_calibration_ = true;
for (uint8_t phase = 0; phase < 3; phase++) {
auto &offset = this->offset_phase_[phase];
bool mismatch = false;
if (this->has_config_voltage_offset_[phase] &&
offset.voltage_offset_ != this->config_offset_phase_[phase].voltage_offset_)
mismatch = true;
if (this->has_config_current_offset_[phase] &&
offset.current_offset_ != this->config_offset_phase_[phase].current_offset_)
mismatch = true;
if (mismatch)
this->offset_calibration_mismatch_[phase] = true;
*has_stored = have_data && !all_zero;
*restored = false;
for (uint8_t phase = 0; phase < 3; phase++) {
mismatches[phase] = false;
if (*has_stored) {
mismatches[phase] =
(has_first[phase] && (*offsets)[phase].first_offset != (*config_offsets)[phase].first_offset) ||
(has_second[phase] && (*offsets)[phase].second_offset != (*config_offsets)[phase].second_offset);
}
} else {
}
if (!*has_stored) {
for (uint8_t phase = 0; phase < 3; phase++)
this->offset_phase_[phase] = this->config_offset_phase_[phase];
ESP_LOGW(TAG, "[CALIBRATION][%s] No stored offset calibrations found. Using default values.", cs);
(*offsets)[phase] = (*config_offsets)[phase];
ESP_LOGW(TAG, "[CALIBRATION][%s] No stored %s calibrations found. Using default values.", cs, LOG_STR_ARG(name));
}
for (uint8_t phase = 0; phase < 3; phase++) {
write_offsets_to_registers_(phase, this->offset_phase_[phase].voltage_offset_,
this->offset_phase_[phase].current_offset_);
this->write_offsets_to_registers_(phase, (*offsets)[phase].first_offset, (*offsets)[phase].second_offset, type);
}
}
void ATM90E32Component::restore_power_offset_calibrations_() {
const char *cs = this->get_calibration_id_();
for (uint8_t i = 0; i < 3; ++i)
this->config_power_offset_phase_[i] = this->power_offset_phase_[i];
bool have_data = this->power_offset_pref_.load(&this->power_offset_phase_);
bool all_zero = true;
if (have_data) {
for (auto &phase : this->power_offset_phase_) {
if (phase.active_power_offset != 0 || phase.reactive_power_offset != 0) {
all_zero = false;
break;
}
}
const bool initial_values_verified = this->verify_offset_writes_(type);
if (initial_values_verified) {
const auto state = resolve_offset_restore_state(*has_stored, true, false);
*restored = state.restored;
ESP_LOGI(TAG, "[CALIBRATION][%s] %s calibration values verified.", cs, LOG_STR_ARG(name));
return;
}
if (have_data && !all_zero) {
this->restored_power_offset_calibration_ = true;
for (uint8_t phase = 0; phase < 3; ++phase) {
auto &offset = this->power_offset_phase_[phase];
bool mismatch = false;
if (this->has_config_active_power_offset_[phase] &&
offset.active_power_offset != this->config_power_offset_phase_[phase].active_power_offset)
mismatch = true;
if (this->has_config_reactive_power_offset_[phase] &&
offset.reactive_power_offset != this->config_power_offset_phase_[phase].reactive_power_offset)
mismatch = true;
if (mismatch)
this->power_offset_calibration_mismatch_[phase] = true;
}
this->using_saved_calibrations_ = false;
for (uint8_t phase = 0; phase < 3; phase++)
mismatches[phase] = false;
for (uint8_t phase = 0; phase < 3; phase++) {
(*offsets)[phase] = (*config_offsets)[phase];
this->write_offsets_to_registers_(phase, (*offsets)[phase].first_offset, (*offsets)[phase].second_offset, type);
}
const auto state = resolve_offset_restore_state(*has_stored, false, this->verify_offset_writes_(type));
*restored = state.restored;
if (state.values_verified) {
ESP_LOGE(TAG, "[CALIBRATION][%s] %s calibration restore failed verification; config values verified.", cs,
LOG_STR_ARG(name));
} else {
for (uint8_t phase = 0; phase < 3; ++phase)
this->power_offset_phase_[phase] = this->config_power_offset_phase_[phase];
ESP_LOGW(TAG, "[CALIBRATION][%s] No stored power offsets found. Using default values.", cs);
}
for (uint8_t phase = 0; phase < 3; ++phase) {
write_power_offsets_to_registers_(phase, this->power_offset_phase_[phase].active_power_offset,
this->power_offset_phase_[phase].reactive_power_offset);
ESP_LOGE(TAG, "[CALIBRATION][%s] %s calibration restore and config fallback both failed verification.", cs,
LOG_STR_ARG(name));
}
}
@@ -1084,14 +1109,14 @@ void ATM90E32Component::clear_gain_calibrations() {
void ATM90E32Component::clear_offset_calibrations() {
const char *cs = this->get_calibration_id_();
if (!this->restored_offset_calibration_) {
if (!this->has_stored_offset_calibration_) {
ESP_LOGI(TAG, "[CALIBRATION][%s] No stored offset calibrations to clear. Current values:", cs);
ESP_LOGI(TAG, "[CALIBRATION][%s] --------------------------------------------------------------", cs);
ESP_LOGI(TAG, "[CALIBRATION][%s] | Phase | offset_voltage | offset_current |", cs);
ESP_LOGI(TAG, "[CALIBRATION][%s] --------------------------------------------------------------", cs);
for (uint8_t phase = 0; phase < 3; phase++) {
ESP_LOGI(TAG, "[CALIBRATION][%s] | %c | %6d | %6d |", cs, 'A' + phase,
this->offset_phase_[phase].voltage_offset_, this->offset_phase_[phase].current_offset_);
this->offset_phase_[phase].first_offset, this->offset_phase_[phase].second_offset);
}
ESP_LOGI(TAG, "[CALIBRATION][%s] ==============================================================\n", cs);
return;
@@ -1104,10 +1129,11 @@ void ATM90E32Component::clear_offset_calibrations() {
for (uint8_t phase = 0; phase < 3; phase++) {
int16_t voltage_offset =
this->has_config_voltage_offset_[phase] ? this->config_offset_phase_[phase].voltage_offset_ : 0;
this->has_config_voltage_offset_[phase] ? this->config_offset_phase_[phase].first_offset : 0;
int16_t current_offset =
this->has_config_current_offset_[phase] ? this->config_offset_phase_[phase].current_offset_ : 0;
this->write_offsets_to_registers_(phase, voltage_offset, current_offset);
this->has_config_current_offset_[phase] ? this->config_offset_phase_[phase].second_offset : 0;
this->write_offsets_to_registers_(phase, voltage_offset, current_offset,
OffsetCalibrationType::OFFSET_CALIBRATION_TYPE_VOLTAGE_CURRENT);
ESP_LOGI(TAG, "[CALIBRATION][%s] | %c | %6d | %6d |", cs, 'A' + phase, voltage_offset,
current_offset);
}
@@ -1117,6 +1143,7 @@ void ATM90E32Component::clear_offset_calibrations() {
this->offset_pref_.save(&zero_offsets); // Clear stored values in flash
global_preferences->sync();
this->has_stored_offset_calibration_ = false;
this->restored_offset_calibration_ = false;
for (bool &phase : this->offset_calibration_mismatch_)
phase = false;
@@ -1126,15 +1153,14 @@ void ATM90E32Component::clear_offset_calibrations() {
void ATM90E32Component::clear_power_offset_calibrations() {
const char *cs = this->get_calibration_id_();
if (!this->restored_power_offset_calibration_) {
if (!this->has_stored_power_offset_calibration_) {
ESP_LOGI(TAG, "[CALIBRATION][%s] No stored power offsets to clear. Current values:", cs);
ESP_LOGI(TAG, "[CALIBRATION][%s] ---------------------------------------------------------------------", cs);
ESP_LOGI(TAG, "[CALIBRATION][%s] | Phase | offset_active_power | offset_reactive_power |", cs);
ESP_LOGI(TAG, "[CALIBRATION][%s] ---------------------------------------------------------------------", cs);
for (uint8_t phase = 0; phase < 3; phase++) {
ESP_LOGI(TAG, "[CALIBRATION][%s] | %c | %6d | %6d |", cs, 'A' + phase,
this->power_offset_phase_[phase].active_power_offset,
this->power_offset_phase_[phase].reactive_power_offset);
this->power_offset_phase_[phase].first_offset, this->power_offset_phase_[phase].second_offset);
}
ESP_LOGI(TAG, "[CALIBRATION][%s] =====================================================================\n", cs);
return;
@@ -1147,20 +1173,21 @@ void ATM90E32Component::clear_power_offset_calibrations() {
for (uint8_t phase = 0; phase < 3; phase++) {
int16_t active_offset =
this->has_config_active_power_offset_[phase] ? this->config_power_offset_phase_[phase].active_power_offset : 0;
int16_t reactive_offset = this->has_config_reactive_power_offset_[phase]
? this->config_power_offset_phase_[phase].reactive_power_offset
: 0;
this->write_power_offsets_to_registers_(phase, active_offset, reactive_offset);
this->has_config_active_power_offset_[phase] ? this->config_power_offset_phase_[phase].first_offset : 0;
int16_t reactive_offset =
this->has_config_reactive_power_offset_[phase] ? this->config_power_offset_phase_[phase].second_offset : 0;
this->write_offsets_to_registers_(phase, active_offset, reactive_offset,
OffsetCalibrationType::OFFSET_CALIBRATION_TYPE_POWER);
ESP_LOGI(TAG, "[CALIBRATION][%s] | %c | %6d | %6d |", cs, 'A' + phase, active_offset,
reactive_offset);
}
ESP_LOGI(TAG, "[CALIBRATION][%s] =====================================================================\n", cs);
PowerOffsetCalibration zero_power_offsets[3]{{0, 0}, {0, 0}, {0, 0}};
OffsetCalibration zero_power_offsets[3]{{0, 0}, {0, 0}, {0, 0}};
this->power_offset_pref_.save(&zero_power_offsets);
global_preferences->sync();
this->has_stored_power_offset_calibration_ = false;
this->restored_power_offset_calibration_ = false;
for (bool &phase : this->power_offset_calibration_mismatch_)
phase = false;
@@ -1215,6 +1242,31 @@ bool ATM90E32Component::verify_gain_writes_() {
return success; // Return true if all writes were successful, false otherwise
}
bool ATM90E32Component::verify_offset_writes_(OffsetCalibrationType type) {
const bool power_offsets = type == OffsetCalibrationType::OFFSET_CALIBRATION_TYPE_POWER;
const char *cs = this->get_calibration_id_();
const LogString *name = offset_calibration_name(power_offsets);
const LogString *first_name = power_offsets ? LOG_STR("active") : LOG_STR("voltage");
const LogString *second_name = power_offsets ? LOG_STR("reactive") : LOG_STR("current");
const OffsetCalibration *offsets = power_offsets ? this->power_offset_phase_ : this->offset_phase_;
const uint16_t *first_registers = power_offsets ? this->power_offset_registers : this->voltage_offset_registers;
const uint16_t *second_registers =
power_offsets ? this->reactive_power_offset_registers : this->current_offset_registers;
bool success = true;
for (uint8_t phase = 0; phase < 3; phase++) {
const uint16_t first = this->read16_(first_registers[phase]);
const uint16_t second = this->read16_(second_registers[phase]);
if (!offset_register_value_matches(first, offsets[phase].first_offset) ||
!offset_register_value_matches(second, offsets[phase].second_offset)) {
ESP_LOGE(TAG, "[CALIBRATION][%s] %s readback failed for Phase %s: %s %d/%d, %s %d/%d.", cs, LOG_STR_ARG(name),
phase_labels[phase], LOG_STR_ARG(first_name), static_cast<int16_t>(first), offsets[phase].first_offset,
LOG_STR_ARG(second_name), static_cast<int16_t>(second), offsets[phase].second_offset);
success = false;
}
}
return success;
}
#ifdef USE_TEXT_SENSOR
void ATM90E32Component::check_phase_status() {
uint16_t state0 = this->read16_(ATM90E32_REGISTER_EMMSTATE0);
+49 -22
View File
@@ -13,6 +13,40 @@
namespace esphome::atm90e32 {
inline bool offset_register_value_matches(uint16_t actual, int16_t expected) {
return actual == static_cast<uint16_t>(expected);
}
struct OffsetCalibration {
int16_t first_offset{0};
int16_t second_offset{0};
};
static_assert(sizeof(OffsetCalibration[3]) == 12, "Offset calibration preference layout must remain compatible");
enum class OffsetCalibrationType : uint8_t {
OFFSET_CALIBRATION_TYPE_VOLTAGE_CURRENT,
OFFSET_CALIBRATION_TYPE_POWER,
};
struct OffsetRestoreState {
bool restored;
bool values_verified;
};
inline OffsetRestoreState resolve_offset_restore_state(bool has_stored_values, bool initial_values_verified,
bool fallback_values_verified) {
if (initial_values_verified)
return {has_stored_values, true};
return {false, fallback_values_verified};
}
inline void prepare_offset_rollback(const OffsetCalibration (&previous)[3], bool had_stored_values,
OffsetCalibration (&rollback)[3]) {
for (uint8_t phase = 0; phase < 3; phase++)
rollback[phase] = had_stored_values ? previous[phase] : OffsetCalibration{};
}
class ATM90E32Component final : public PollingComponent,
public spi::SPIDevice<spi::BIT_ORDER_MSB_FIRST, spi::CLOCK_POLARITY_HIGH,
spi::CLOCK_PHASE_TRAILING, spi::DATA_RATE_1MHZ> {
@@ -71,19 +105,19 @@ class ATM90E32Component final : public PollingComponent,
this->has_config_current_gain_[phase] = true;
}
void set_voltage_offset(uint8_t phase, int16_t offset) {
this->offset_phase_[phase].voltage_offset_ = offset;
this->offset_phase_[phase].first_offset = offset;
this->has_config_voltage_offset_[phase] = true;
}
void set_current_offset(uint8_t phase, int16_t offset) {
this->offset_phase_[phase].current_offset_ = offset;
this->offset_phase_[phase].second_offset = offset;
this->has_config_current_offset_[phase] = true;
}
void set_active_power_offset(uint8_t phase, int16_t offset) {
this->power_offset_phase_[phase].active_power_offset = offset;
this->power_offset_phase_[phase].first_offset = offset;
this->has_config_active_power_offset_[phase] = true;
}
void set_reactive_power_offset(uint8_t phase, int16_t offset) {
this->power_offset_phase_[phase].reactive_power_offset = offset;
this->power_offset_phase_[phase].second_offset = offset;
this->has_config_reactive_power_offset_[phase] = true;
}
void set_freq_sensor(sensor::Sensor *freq_sensor) { freq_sensor_ = freq_sensor; }
@@ -171,16 +205,16 @@ class ATM90E32Component final : public PollingComponent,
float get_chip_temperature_();
bool get_publish_interval_flag_() { return publish_interval_flag_; };
void set_publish_interval_flag_(bool flag) { publish_interval_flag_ = flag; };
void restore_offset_calibrations_();
void restore_power_offset_calibrations_();
void restore_offset_calibrations_(OffsetCalibrationType type);
void restore_gain_calibrations_();
void save_offset_calibration_to_memory_();
void save_gain_calibration_to_memory_();
void save_power_offset_calibration_to_memory_();
void write_offsets_to_registers_(uint8_t phase, int16_t voltage_offset, int16_t current_offset);
void write_power_offsets_to_registers_(uint8_t phase, int16_t p_offset, int16_t q_offset);
void finish_offset_calibration_(const OffsetCalibration (&previous)[3], bool previous_restored,
bool previous_using_saved, OffsetCalibrationType type);
void write_offsets_to_registers_(uint8_t phase, int16_t first_offset, int16_t second_offset,
OffsetCalibrationType type);
void write_gains_to_registers_();
bool verify_gain_writes_();
bool verify_offset_writes_(OffsetCalibrationType type);
bool validate_spi_read_(uint16_t expected, const char *context = nullptr);
void log_calibration_status_();
const char *get_calibration_id_();
@@ -219,19 +253,10 @@ class ATM90E32Component final : public PollingComponent,
uint32_t cumulative_reverse_active_energy_{0};
} phase_[3];
struct OffsetCalibration {
int16_t voltage_offset_{0};
int16_t current_offset_{0};
} offset_phase_[3];
OffsetCalibration offset_phase_[3];
OffsetCalibration config_offset_phase_[3];
struct PowerOffsetCalibration {
int16_t active_power_offset{0};
int16_t reactive_power_offset{0};
} power_offset_phase_[3];
PowerOffsetCalibration config_power_offset_phase_[3];
OffsetCalibration power_offset_phase_[3];
OffsetCalibration config_power_offset_phase_[3];
struct GainCalibration {
uint16_t voltage_gain{1};
@@ -265,6 +290,8 @@ class ATM90E32Component final : public PollingComponent,
bool enable_offset_calibration_{false};
bool enable_gain_calibration_{false};
const char *instance_id_{nullptr};
bool has_stored_offset_calibration_{false};
bool has_stored_power_offset_calibration_{false};
bool restored_offset_calibration_{false};
bool restored_power_offset_calibration_{false};
bool restored_gain_calibration_{false};
+4 -3
View File
@@ -313,9 +313,10 @@ FileDecoderState AudioDecoder::decode_mp3_() {
this->output_transfer_buffer_->increase_buffer_length(
this->audio_stream_info_.value().frames_to_bytes(samples_decoded));
}
} else if (result == micro_mp3::MP3_STREAM_INFO_READY) {
// First successful header parse: capture stream info and resize the output buffer to fit one full frame.
// microMP3 always outputs 16-bit PCM.
} else if (result == micro_mp3::MP3_STREAM_INFO_READY || result == micro_mp3::MP3_STREAM_INFO_CHANGED) {
// Header parsed: capture stream info and resize the output buffer to fit one full frame.
// microMP3 always outputs 16-bit PCM. MP3_STREAM_INFO_CHANGED is handled identically: despite its
// negative value it is documented as recoverable, so it must not reach the catch-all below.
this->audio_stream_info_ =
audio::AudioStreamInfo(16, this->mp3_decoder_->get_channels(), this->mp3_decoder_->get_sample_rate());
this->free_buffer_required_ =
+24 -10
View File
@@ -22,6 +22,23 @@ class Automation {
static const char *const TAG;
};
// Base for nodes that never read the parent's services.
// The parent releases its services only once every node reports Established, so a node that never
// reports it keeps that memory allocated for the life of the connection.
class BLEClientServicelessNode : public BLEClientNode {
public:
// Final so that Established is always reported on SEARCH_CMPL, before the derived node sees the event.
void gattc_event_handler(esp_gattc_cb_event_t event, esp_gatt_if_t gattc_if, esp_ble_gattc_cb_param_t *param) final {
if (event == ESP_GATTC_SEARCH_CMPL_EVT)
this->node_state = espbt::ClientState::ESTABLISHED;
this->on_gattc_event(event, gattc_if, param);
}
protected:
// Derived nodes handle GATT events here rather than by overriding the handler above.
virtual void on_gattc_event(esp_gattc_cb_event_t event, esp_gatt_if_t gattc_if, esp_ble_gattc_cb_param_t *param) {}
};
// implement on_connect automation.
class BLEClientConnectTrigger final : public Trigger<>, public BLEClientNode {
public:
@@ -61,7 +78,7 @@ class BLEClientDisconnectTrigger final : public Trigger<>, public BLEClientNode
}
};
class BLEClientPasskeyRequestTrigger final : public Trigger<>, public BLEClientNode {
class BLEClientPasskeyRequestTrigger final : public Trigger<>, public BLEClientServicelessNode {
public:
explicit BLEClientPasskeyRequestTrigger(BLEClient *parent) { parent->register_ble_node(this); }
void loop() override {}
@@ -71,7 +88,7 @@ class BLEClientPasskeyRequestTrigger final : public Trigger<>, public BLEClientN
}
};
class BLEClientPasskeyNotificationTrigger final : public Trigger<uint32_t>, public BLEClientNode {
class BLEClientPasskeyNotificationTrigger final : public Trigger<uint32_t>, public BLEClientServicelessNode {
public:
explicit BLEClientPasskeyNotificationTrigger(BLEClient *parent) { parent->register_ble_node(this); }
void loop() override {}
@@ -82,7 +99,7 @@ class BLEClientPasskeyNotificationTrigger final : public Trigger<uint32_t>, publ
}
};
class BLEClientNumericComparisonRequestTrigger final : public Trigger<uint32_t>, public BLEClientNode {
class BLEClientNumericComparisonRequestTrigger final : public Trigger<uint32_t>, public BLEClientServicelessNode {
public:
explicit BLEClientNumericComparisonRequestTrigger(BLEClient *parent) { parent->register_ble_node(this); }
void loop() override {}
@@ -315,19 +332,17 @@ template<typename... Ts> class BLEClientRemoveBondAction final : public Action<T
BLEClient *parent_{nullptr};
};
template<typename... Ts> class BLEClientConnectAction final : public Action<Ts...>, public BLEClientNode {
template<typename... Ts> class BLEClientConnectAction final : public Action<Ts...>, public BLEClientServicelessNode {
public:
BLEClientConnectAction(BLEClient *ble_client) {
ble_client->register_ble_node(this);
ble_client_ = ble_client;
}
void gattc_event_handler(esp_gattc_cb_event_t event, esp_gatt_if_t gattc_if,
esp_ble_gattc_cb_param_t *param) override {
void on_gattc_event(esp_gattc_cb_event_t event, esp_gatt_if_t gattc_if, esp_ble_gattc_cb_param_t *param) override {
if (this->num_running_ == 0)
return;
switch (event) {
case ESP_GATTC_SEARCH_CMPL_EVT:
this->node_state = espbt::ClientState::ESTABLISHED;
this->parent()->run_later([this]() { this->play_next_tuple_(this->var_); });
break;
// if the connection is closed, terminate the automation chain.
@@ -364,14 +379,13 @@ template<typename... Ts> class BLEClientConnectAction final : public Action<Ts..
std::tuple<Ts...> var_{};
};
template<typename... Ts> class BLEClientDisconnectAction final : public Action<Ts...>, public BLEClientNode {
template<typename... Ts> class BLEClientDisconnectAction final : public Action<Ts...>, public BLEClientServicelessNode {
public:
BLEClientDisconnectAction(BLEClient *ble_client) {
ble_client->register_ble_node(this);
ble_client_ = ble_client;
}
void gattc_event_handler(esp_gattc_cb_event_t event, esp_gatt_if_t gattc_if,
esp_ble_gattc_cb_param_t *param) override {
void on_gattc_event(esp_gattc_cb_event_t event, esp_gatt_if_t gattc_if, esp_ble_gattc_cb_param_t *param) override {
if (this->num_running_ == 0)
return;
switch (event) {
@@ -6,6 +6,7 @@ namespace esphome::dallas_temp {
static const char *const TAG = "dallas.temp.sensor";
static const uint8_t DALLAS_MODEL_DS18S20 = 0x10;
static const uint8_t DALLAS_MODEL_DS18B20 = 0x28;
static const uint8_t DALLAS_COMMAND_START_CONVERSION = 0x44;
static const uint8_t DALLAS_COMMAND_READ_SCRATCH_PAD = 0xBE;
static const uint8_t DALLAS_COMMAND_WRITE_SCRATCH_PAD = 0x4E;
@@ -154,7 +155,14 @@ float DallasTemperatureSensor::get_temp_c_() {
default:
break;
}
// undocumented test for powerup measurement of 85
// https://github.com/cpetrich/counterfeit_DS18B20#solution-to-the-85-c-problem
if ((this->address_ & 0xff) == DALLAS_MODEL_DS18B20) {
if ((temp == 85 * 16) && (this->scratch_pad_[6] == 0xc)) {
ESP_LOGD(TAG, "dropping reading caused by sensor reset");
return NAN;
}
}
return temp / 16.0f;
}
+6 -2
View File
@@ -66,11 +66,15 @@ const char *DebugComponent::get_reset_reason_(std::span<char, RESET_REASON_BUFFE
unsigned reason = esp_reset_reason();
if (reason < sizeof(RESET_REASONS) / sizeof(RESET_REASONS[0])) {
if (reason == ESP_RST_SW) {
if (reason == ESP_RST_SW || reason == ESP_RST_WDT) {
// On some ESP32-S3 configurations (e.g. SPIRAM with fetch-instructions/rodata),
// esp_restart() intermittently produces RTCWDT_RTC_RST (ESP_RST_WDT) instead of
// ESP_RST_SW. Check the stored reboot source for both reset reasons so a software
// reboot that ends up as WDT still reports the correct source.
auto pref = global_preferences->make_preference(REBOOT_MAX_LEN,
fnv1_hash_extend(fnv1_hash(REBOOT_KEY), App.get_name().c_str()));
char reboot_source[REBOOT_MAX_LEN]{};
if (pref.load(&reboot_source)) {
if (pref.load(&reboot_source) && reboot_source[0] != '\0') {
reboot_source[REBOOT_MAX_LEN - 1] = '\0';
snprintf(buf, size, "Reboot request from %s", reboot_source);
} else {
+1 -5
View File
@@ -23,11 +23,7 @@ from esphome.const import (
)
from esphome.types import ConfigType
from . import ( # noqa: F401 pylint: disable=unused-import
CONF_DEBUG_ID,
FILTER_SOURCE_FILES,
DebugComponent,
)
from . import CONF_DEBUG_ID, FILTER_SOURCE_FILES, DebugComponent # noqa: F401 pylint: disable=unused-import
DEPENDENCIES = ["debug"]
+1 -5
View File
@@ -9,11 +9,7 @@ from esphome.const import (
)
from esphome.types import ConfigType
from . import ( # noqa: F401 pylint: disable=unused-import
CONF_DEBUG_ID,
FILTER_SOURCE_FILES,
DebugComponent,
)
from . import CONF_DEBUG_ID, FILTER_SOURCE_FILES, DebugComponent # noqa: F401 pylint: disable=unused-import
DEPENDENCIES = ["debug"]
+2 -9
View File
@@ -3,18 +3,11 @@ import esphome.codegen as cg
# Re-exported for the many esp32-side users; defined in esphome.const
# and esphome.espidf so the upload/logs fast path can use them without
# importing this package.
from esphome.const import ( # noqa: F401 # pylint: disable=unused-import
KEY_ESP32,
KEY_FLASH_SIZE,
KEY_IDF_VERSION,
KEY_VARIANT,
)
from esphome.const import KEY_ESP32, KEY_FLASH_SIZE, KEY_IDF_VERSION, KEY_VARIANT # noqa: F401 # pylint: disable=unused-import
# Back compat for external components only; in-tree callers import it
# from esphome.espidf directly.
from esphome.espidf import ( # noqa: F401 # pylint: disable=unused-import
variant_to_idf_target,
)
from esphome.espidf import variant_to_idf_target # noqa: F401 # pylint: disable=unused-import
KEY_BOARD = "board"
KEY_SDKCONFIG_OPTIONS = "sdkconfig_options"
+13 -1
View File
@@ -283,10 +283,18 @@ FINAL_VALIDATE_SCHEMA = ota_esphome_final_validate
FILTER_SOURCE_FILES = filter_source_files_from_defines(
{"ota_esphome_noise.cpp": "USE_OTA_ENCRYPTION"}
{
"ota_esphome_noise.cpp": "USE_OTA_ENCRYPTION",
"ota_esphome_inflate.c": "USE_OTA_DEFLATE",
}
)
def enable_deflate() -> None:
"""Compile the on-the-fly inflater for compressed uploads."""
cg.add_define("USE_OTA_DEFLATE")
@coroutine_with_priority(CoroPriority.OTA_UPDATES)
async def to_code(config: ConfigType) -> None:
var = cg.new_Pvariable(config[CONF_ID])
@@ -305,6 +313,10 @@ async def to_code(config: ConfigType) -> None:
if config.get(CONF_ALLOW_PARTITION_ACCESS):
cg.add_define("USE_OTA_PARTITIONS")
# ESP8266 and RP2040 inflate gzip at reboot; the rest inflate on the fly
if not (CORE.is_esp8266 or CORE.is_rp2):
enable_deflate()
# One key per device: an api encryption block supplies it (static or
# runtime) and offers; the ota block only adds the requirement
api_conf = CORE.config.get(CONF_API) or {}
+208 -80
View File
@@ -24,6 +24,7 @@
#include <cerrno>
#include <cstdio>
#include <new>
#include <sys/time.h>
namespace esphome {
@@ -42,6 +43,8 @@ const noise::NoiseContext &ESPHomeOTAComponent::noise_context_() const {
static constexpr uint16_t OTA_BLOCK_SIZE = 8192;
static constexpr uint32_t OTA_SOCKET_TIMEOUT_HANDSHAKE = 20000; // milliseconds for initial handshake
static constexpr uint32_t OTA_SOCKET_TIMEOUT_DATA = 90000; // milliseconds for data transfer
static constexpr uint32_t OTA_PROGRESS_INTERVAL_MS = 1000;
static constexpr size_t OTA_SIZE_FIELD_BYTES = 4; // sizes on the wire are 4 bytes MSB first
// Single-instance pointer — multi-port configs are rejected in final_validate.
// NOLINTNEXTLINE(cppcoreguidelines-avoid-non-const-global-variables)
@@ -179,12 +182,16 @@ static constexpr uint8_t CLIENT_FEATURE_SUPPORTS_COMPRESSION = 0x01;
static constexpr uint8_t CLIENT_FEATURE_SUPPORTS_SHA256_AUTH = 0x02;
static constexpr uint8_t CLIENT_FEATURE_SUPPORTS_EXTENDED_PROTOCOL = 0x04;
static constexpr uint8_t CLIENT_FEATURE_SUPPORTS_NOISE = 0x08;
static constexpr uint8_t CLIENT_FEATURE_SUPPORTS_DEFLATE = 0x10;
// Noise needs the extended protocol: the prologue binds the 2-byte feature ack
static constexpr uint8_t CLIENT_NOISE_FEATURES =
CLIENT_FEATURE_SUPPORTS_NOISE | CLIENT_FEATURE_SUPPORTS_EXTENDED_PROTOCOL;
static constexpr uint8_t SERVER_FEATURE_SUPPORTS_COMPRESSION = 0x01;
static constexpr uint8_t SERVER_FEATURE_SUPPORTS_PARTITION_ACCESS = 0x02;
static constexpr uint8_t SERVER_FEATURE_SUPPORTS_NOISE = 0x04;
// Raw deflate, window <= OTA_INFLATE_WINDOW_SIZE. Binding once offered: the
// client must then send the image size frame and a deflate stream.
static constexpr uint8_t SERVER_FEATURE_SUPPORTS_DEFLATE = 0x08;
inline bool ESPHomeOTAComponent::extended_proto_() const {
#ifdef USE_OTA_ENCRYPTION_REQUIRED
@@ -290,7 +297,7 @@ void ESPHomeOTAComponent::handle_handshake_() {
this->transition_ota_state_(OTAState::FEATURE_ACK);
const bool supports_compression =
(this->ota_features_ & CLIENT_FEATURE_SUPPORTS_COMPRESSION) != 0 && this->backend_->supports_compression();
(this->ota_features_ & CLIENT_FEATURE_SUPPORTS_COMPRESSION) != 0 && ota::OTABackend::supports_compression();
// Compose the feature-ack response. When the client negotiates the extended protocol we emit
// a 2-byte response (marker + server feature flags); otherwise we emit the single-byte
@@ -310,6 +317,17 @@ void ESPHomeOTAComponent::handle_handshake_() {
#elif defined(USE_OTA_ENCRYPTION)
// A yaml key always exists: validation rejects the all-zeros key
this->handshake_buf_[1] |= SERVER_FEATURE_SUPPORTS_NOISE;
#endif
#ifdef USE_OTA_DEFLATE
// Offered only once the session memory is in hand; else uncompressed
if ((this->ota_features_ & CLIENT_FEATURE_SUPPORTS_DEFLATE) != 0) {
this->inflate_.reset(new (std::nothrow) InflateSession());
if (this->inflate_ != nullptr) {
this->handshake_buf_[1] |= SERVER_FEATURE_SUPPORTS_DEFLATE;
} else {
ESP_LOGW(TAG, "No memory to inflate");
}
}
#endif
} else {
this->handshake_buf_[0] =
@@ -427,16 +445,11 @@ void ESPHomeOTAComponent::handle_data_() {
// Backend calls overwrite this with OK; reset to UNKNOWN before any
// goto error that follows a successful begin()/write()
ota::OTAResponseTypes error_code = ota::OTA_RESPONSE_ERROR_UNKNOWN;
size_t total = 0;
uint32_t last_progress = 0;
uint32_t last_data_ms = 0;
DataTransfer xfer;
uint8_t buf[OTA_BUFFER_SIZE];
char *sbuf = reinterpret_cast<char *>(buf);
size_t ota_size;
size_t image_size;
ota::OTAType ota_type = ota::OTA_TYPE_UPDATE_APP;
#if USE_OTA_VERSION == 2
size_t size_acknowledged = 0;
#endif
// Set socket timeouts and blocking mode (see strategy table above)
struct timeval tv;
@@ -459,14 +472,13 @@ void ESPHomeOTAComponent::handle_data_() {
}
ESP_LOGV(TAG, "OTA type is 0x%02x", ota_type);
// Read size, 4 bytes MSB first
if (!this->data_readall_(buf, 4)) {
this->log_read_error_(LOG_STR("size"));
if (!this->read_size_(buf, xfer.ota_size, LOG_STR("size")))
goto error; // NOLINT(cppcoreguidelines-avoid-goto)
}
ota_size = (static_cast<size_t>(buf[0]) << 24) | (static_cast<size_t>(buf[1]) << 16) |
(static_cast<size_t>(buf[2]) << 8) | buf[3];
ESP_LOGV(TAG, "Size is %zu bytes", ota_size);
image_size = xfer.ota_size;
#ifdef USE_OTA_DEFLATE
if (this->inflate_ != nullptr && !this->read_size_(buf, image_size, LOG_STR("image size")))
goto error; // NOLINT(cppcoreguidelines-avoid-goto)
#endif
#ifndef USE_OTA_PARTITIONS
if (ota_type != ota::OTA_TYPE_UPDATE_APP) {
@@ -486,7 +498,7 @@ void ESPHomeOTAComponent::handle_data_() {
#endif
// begin() returns quickly; flash sectors are erased incrementally during write().
error_code = this->backend_->begin(ota_size, ota_type);
error_code = this->backend_->begin(image_size, ota_type);
if (error_code != ota::OTA_RESPONSE_OK)
goto error; // NOLINT(cppcoreguidelines-avoid-goto)
@@ -506,75 +518,25 @@ void ESPHomeOTAComponent::handle_data_() {
// Acknowledge MD5 OK - 1 byte
this->data_write_byte_(ota::OTA_RESPONSE_BIN_MD5_OK);
// Track when we last received data so a silently-vanished peer (no FIN/RST
// delivered, e.g. uploader killed mid-transfer or NAT/router dropped state)
// can't wedge the device indefinitely. Without this, the loop only exits
// on actual data, EOF, or a non-EWOULDBLOCK error from read(), and lwIP
// TCP keepalive isn't enabled here.
last_data_ms = millis();
while (total < ota_size) {
if (millis() - last_data_ms > OTA_SOCKET_TIMEOUT_DATA) {
ESP_LOGW(TAG, "No data received for %u ms", (unsigned) OTA_SOCKET_TIMEOUT_DATA);
error_code = ota::OTA_RESPONSE_ERROR_UNKNOWN;
xfer.last_data_ms = millis();
#ifdef USE_OTA_DEFLATE
if (this->inflate_ != nullptr) {
error_code = this->inflate_data_(buf, image_size, xfer);
if (error_code != ota::OTA_RESPONSE_OK)
goto error; // NOLINT(cppcoreguidelines-avoid-goto)
}
size_t remaining = ota_size - total;
size_t requested = remaining < OTA_BUFFER_SIZE ? remaining : OTA_BUFFER_SIZE;
ssize_t read;
#ifdef USE_OTA_ENCRYPTION
if (this->noise_ != nullptr) {
// One frame per call; noise_read_data_ waits internally (readall_), so
// there is no would-block retry here and failures are already logged.
read = this->noise_read_data_(buf, requested);
if (read <= 0) {
} else
#endif
{
while (xfer.total < xfer.ota_size) {
ssize_t read = this->receive_data_(buf, xfer);
if (read < 0) {
error_code = ota::OTA_RESPONSE_ERROR_UNKNOWN;
goto error; // NOLINT(cppcoreguidelines-avoid-goto)
}
} else
#endif
{
read = this->client_->read(buf, requested);
if (read == -1) {
const int err = errno;
if (this->would_block_(err)) {
// read() already waited up to SO_RCVTIMEO for data, just feed WDT
App.feed_wdt();
continue;
}
ESP_LOGW(TAG, "Read err %d", err);
error_code = ota::OTA_RESPONSE_ERROR_UNKNOWN;
error_code = this->write_flash_(buf, read);
if (error_code != ota::OTA_RESPONSE_OK)
goto error; // NOLINT(cppcoreguidelines-avoid-goto)
} else if (read == 0) {
ESP_LOGW(TAG, "Remote closed");
error_code = ota::OTA_RESPONSE_ERROR_UNKNOWN;
goto error; // NOLINT(cppcoreguidelines-avoid-goto)
}
}
last_data_ms = millis();
error_code = this->backend_->write(buf, read);
if (error_code != ota::OTA_RESPONSE_OK) {
ESP_LOGW(TAG, "Flash write err %d", error_code);
goto error; // NOLINT(cppcoreguidelines-avoid-goto)
}
total += read;
#if USE_OTA_VERSION == 2
while (size_acknowledged + OTA_BLOCK_SIZE <= total || (total == ota_size && size_acknowledged < ota_size)) {
this->data_write_byte_(ota::OTA_RESPONSE_CHUNK_OK);
size_acknowledged += OTA_BLOCK_SIZE;
}
#endif
uint32_t now = millis();
if (now - last_progress > 1000) {
last_progress = now;
float percentage = (total * 100.0f) / ota_size;
ESP_LOGD(TAG, "Progress: %0.1f%%", percentage);
#ifdef USE_OTA_STATE_LISTENER
this->notify_state_(ota::OTA_IN_PROGRESS, percentage, 0);
#endif
// feed watchdog and give other tasks a chance to run
this->yield_and_feed_watchdog_();
this->ack_written_(xfer);
}
}
@@ -771,6 +733,169 @@ bool ESPHomeOTAComponent::try_write_(size_t to_write, const LogString *desc) {
return this->handshake_buf_pos_ >= to_write;
}
bool ESPHomeOTAComponent::read_size_(uint8_t *buf, size_t &size, const LogString *desc) {
if (!this->data_readall_(buf, OTA_SIZE_FIELD_BYTES)) {
this->log_read_error_(desc);
return false;
}
size = encode_uint32(buf[0], buf[1], buf[2], buf[3]);
ESP_LOGV(TAG, "%s is %zu bytes", LOG_STR_ARG(desc), size);
return true;
}
ota::OTAResponseTypes ESPHomeOTAComponent::write_flash_(uint8_t *data, size_t len) {
ota::OTAResponseTypes result = this->backend_->write(data, len);
if (result != ota::OTA_RESPONSE_OK) {
ESP_LOGW(TAG, "Flash write err %d", result);
}
return result;
}
ssize_t ESPHomeOTAComponent::receive_data_(uint8_t *buf, DataTransfer &xfer) {
const size_t remaining = xfer.ota_size - xfer.total;
const size_t requested = std::min(remaining, OTA_BUFFER_SIZE);
ssize_t read;
for (;;) {
// A silently-vanished peer (no FIN/RST delivered, e.g. uploader killed
// mid-transfer or NAT/router dropped state) must not wedge the device:
// read() only fails on EOF or a real error, and lwIP TCP keepalive isn't
// enabled here.
if (millis() - xfer.last_data_ms > OTA_SOCKET_TIMEOUT_DATA) {
ESP_LOGW(TAG, "No data received for %u ms", (unsigned) OTA_SOCKET_TIMEOUT_DATA);
return -1;
}
#ifdef USE_OTA_ENCRYPTION
if (this->noise_ != nullptr) {
// One frame per call; noise_read_data_ waits internally (readall_), so
// there is no would-block retry here and failures are already logged.
read = this->noise_read_data_(buf, requested);
if (read <= 0)
return -1;
break;
}
#endif
read = this->client_->read(buf, requested);
if (read > 0)
break;
if (read == 0) {
this->log_remote_closed_(LOG_STR("data"));
return -1;
}
if (!this->would_block_(errno)) {
this->log_socket_error_(LOG_STR("data"));
return -1;
}
// read() already waited up to SO_RCVTIMEO for data, just feed WDT
App.feed_wdt();
}
const uint32_t now = millis();
xfer.last_data_ms = now;
xfer.total += read;
this->ack_received_(xfer);
if (now - xfer.last_progress > OTA_PROGRESS_INTERVAL_MS) {
xfer.last_progress = now;
float percentage = (xfer.total * 100.0f) / xfer.ota_size;
ESP_LOGD(TAG, "Progress: %0.1f%%", percentage);
#ifdef USE_OTA_STATE_LISTENER
this->notify_state_(ota::OTA_IN_PROGRESS, percentage, 0);
#endif
// feed watchdog and give other tasks a chance to run
this->yield_and_feed_watchdog_();
}
return read;
}
void ESPHomeOTAComponent::send_chunk_acks_(DataTransfer &xfer) {
#if USE_OTA_VERSION == 2
while (xfer.acknowledged + OTA_BLOCK_SIZE <= xfer.total ||
(xfer.total == xfer.ota_size && xfer.acknowledged < xfer.ota_size)) {
this->data_write_byte_(ota::OTA_RESPONSE_CHUNK_OK);
xfer.acknowledged += OTA_BLOCK_SIZE;
}
#endif
}
#ifdef USE_OTA_DEFLATE
// The window doubles as the output buffer; flushed bytes stay as back
// reference history for the next windowful.
ota::OTAResponseTypes ESPHomeOTAComponent::inflate_flush_(InflateSession &session) {
const size_t produced = session.dest - session.window;
const size_t pending = produced - session.flushed;
if (pending == 0)
return ota::OTA_RESPONSE_OK;
if (pending > session.image_size - session.written) {
ESP_LOGW(TAG, "Inflate overrun");
return ota::OTA_RESPONSE_ERROR_UNKNOWN;
}
ota::OTAResponseTypes result = this->write_flash_(session.window + session.flushed, pending);
if (result != ota::OTA_RESPONSE_OK)
return result;
session.flushed = produced;
session.written += pending;
// A compressible region yields many windows per socket read
App.feed_wdt();
this->ack_written_(*session.xfer);
return ota::OTA_RESPONSE_OK;
}
ota::OTAResponseTypes ESPHomeOTAComponent::inflate_data_(uint8_t *in, size_t image_size, DataTransfer &xfer) {
InflateSession &session = *this->inflate_;
session.self = this;
session.xfer = &xfer;
session.in = in;
session.image_size = image_size;
session.written = 0;
session.error = ota::OTA_RESPONSE_OK;
ota_inflate_init(&session, session.window, OTA_INFLATE_WINDOW_SIZE);
// Where the ack must follow the write, flush and ack before waiting for
// input, or the client waits for an ack while the decoder waits for data
session.source_read_cb = [](OtaInflateState *d) -> int {
auto *s = static_cast<InflateSession *>(d);
if (ACK_AFTER_WRITE) {
s->error = s->self->inflate_flush_(*s);
if (s->error != ota::OTA_RESPONSE_OK)
return -1;
}
// More input than announced; reported by the size check below
if (s->xfer->total >= s->xfer->ota_size)
return -1;
ssize_t read = s->self->receive_data_(s->in, *s->xfer);
if (read <= 0) {
// Already logged by receive_data_
s->error = ota::OTA_RESPONSE_ERROR_UNKNOWN;
return -1;
}
d->source = s->in + 1;
d->source_limit = s->in + read;
return s->in[0];
};
int res;
do {
// The ring index wrapped to 0 exactly when the window filled
session.dest = session.window;
session.dest_limit = session.window + OTA_INFLATE_WINDOW_SIZE;
session.flushed = 0;
res = ota_inflate(&session);
// A stored block keeps emitting zeros after a failed read, hence eof
if (res < 0 || session.eof)
break;
session.error = this->inflate_flush_(session);
} while (res != OTA_INFLATE_DONE && session.error == ota::OTA_RESPONSE_OK);
// Transport and flash failures are logged where they happen
if (session.error != ota::OTA_RESPONSE_OK)
return session.error;
if (res != OTA_INFLATE_DONE || session.written != image_size || xfer.total != xfer.ota_size) {
ESP_LOGW(TAG, "Inflate err %d", res);
return ota::OTA_RESPONSE_ERROR_UNKNOWN;
}
ESP_LOGD(TAG, "Inflated %zu bytes from %zu", session.written, xfer.total);
return ota::OTA_RESPONSE_OK;
}
#endif // USE_OTA_DEFLATE
void ESPHomeOTAComponent::cleanup_connection_() {
this->client_->close();
this->client_ = nullptr;
@@ -784,6 +909,9 @@ void ESPHomeOTAComponent::cleanup_connection_() {
#endif
#ifdef USE_OTA_ENCRYPTION
this->noise_ = nullptr;
#endif
#ifdef USE_OTA_DEFLATE
this->inflate_ = nullptr;
#endif
// Intentionally no disable_loop() — letting loop() run one more iteration catches
// any connection that queued on the listener mid-session (otherwise the wake flag,
@@ -7,6 +7,9 @@
#ifdef USE_OTA_ENCRYPTION
#include "esphome/components/noise/noise_handshake.h"
#endif
#ifdef USE_OTA_DEFLATE
#include "ota_esphome_inflate.h"
#endif
#include "esphome/core/helpers.h"
#include "esphome/core/log.h"
#include "esphome/core/preferences.h"
@@ -119,6 +122,38 @@ class ESPHomeOTAComponent final : public ota::OTAComponent {
return this->readall_(buf, len);
}
// Upload accounting shared by the data loop and the inflate read callback
struct DataTransfer {
size_t ota_size{0}; // bytes the client sends
size_t total{0}; // bytes received so far
#if USE_OTA_VERSION == 2
size_t acknowledged{0};
#endif
uint32_t last_data_ms{0};
uint32_t last_progress{0};
};
// Up to OTA_BUFFER_SIZE bytes into buf; returns bytes read, -1 on failure (logged)
inline ssize_t receive_data_(uint8_t *buf, DataTransfer &xfer);
// Raw lwIP cannot service the radio during a sector write, so the ack waits
// for the write there; a socket task lets the next block arrive meanwhile
#ifdef USE_SOCKET_IMPL_LWIP_TCP
static constexpr bool ACK_AFTER_WRITE = true;
#else
static constexpr bool ACK_AFTER_WRITE = false;
#endif
void send_chunk_acks_(DataTransfer &xfer);
inline void ack_received_(DataTransfer &xfer) {
if (!ACK_AFTER_WRITE)
this->send_chunk_acks_(xfer);
}
inline void ack_written_(DataTransfer &xfer) {
if (ACK_AFTER_WRITE)
this->send_chunk_acks_(xfer);
}
inline bool read_size_(uint8_t *buf, size_t &size, const LogString *desc);
// Writes to the backend and logs a failure
inline ota::OTAResponseTypes write_flash_(uint8_t *data, size_t len);
bool try_read_(size_t to_read, const LogString *desc);
bool try_write_(size_t to_write, const LogString *desc);
@@ -171,6 +206,31 @@ class ESPHomeOTAComponent final : public ota::OTAComponent {
static_assert(OTA_BUFFER_SIZE >= NOISE_CLIENT_MAX_PLAINTEXT + noise::MAC_SIZE,
"OTA_BUFFER_SIZE must fit a full encrypted data frame");
#endif
#ifdef USE_OTA_DEFLATE
// At least 1 << espota2.DEFLATE_WINDOW_BITS; also the inflate output buffer
static constexpr size_t OTA_INFLATE_WINDOW_SIZE = 4096;
// Heap-allocated only while a deflate upload is negotiated; the decoder
// state is the base so the read callback can recover the session
struct InflateSession : OtaInflateState {
ESPHomeOTAComponent *self;
DataTransfer *xfer;
uint8_t *in; // caller's buffer for the compressed input, valid during inflate_data_
size_t image_size;
size_t written; // inflated bytes in flash
size_t flushed; // bytes of the current window already in flash
ota::OTAResponseTypes error; // first failure inside the read callback
uint8_t window[OTA_INFLATE_WINDOW_SIZE];
};
#ifndef CLANG_TIDY // static analysis sets every define at once
static_assert(!ota::OTABackend::supports_compression(),
"USE_OTA_DEFLATE is for backends that cannot store a gzip image");
#endif
// Writes the decoded bytes not yet in flash without moving dest
ota::OTAResponseTypes inflate_flush_(InflateSession &session);
ota::OTAResponseTypes inflate_data_(uint8_t *in, size_t image_size, DataTransfer &xfer);
std::unique_ptr<InflateSession> inflate_;
#endif
static constexpr uint8_t MAGIC_BYTES[5] = {0x6C, 0x26, 0xF7, 0x5C, 0x45};
// Derived from the feature byte; storing it would pad the trailing bytes
bool extended_proto_() const;
@@ -0,0 +1,498 @@
/*
* uzlib - tiny deflate/inflate library (deflate, gzip, zlib)
*
* Copyright (c) 2003 by Joergen Ibsen / Jibz
* All Rights Reserved
* http://www.ibsensoftware.com/
*
* Copyright (c) 2014-2018 by Paul Sokolovsky
*
* This software is provided 'as-is', without any express
* or implied warranty. In no event will the authors be
* held liable for any damages arising from the use of
* this software.
*
* Permission is granted to anyone to use this software
* for any purpose, including commercial applications,
* and to alter it and redistribute it freely, subject to
* the following restrictions:
*
* 1. The origin of this software must not be
* misrepresented; you must not claim that you
* wrote the original software. If you use this
* software in a product, an acknowledgment in
* the product documentation would be appreciated
* but is not required.
*
* 2. Altered source versions must be plainly marked
* as such, and must not be misrepresented as
* being the original software.
*
* 3. This notice may not be removed or altered from
* any source distribution.
*/
/*
* Altered for ESPHome: this is the raw deflate decoder from uzlib's
* tinflate.c (v2.9.5) with the gzip/zlib header parsers, checksums,
* runtime table builder and in-memory (non ring window) output path
* removed, and the public names prefixed with ota_inflate.
*/
#include "ota_esphome_inflate.h"
#include <stddef.h>
#define TINF_OK OTA_INFLATE_OK
#define TINF_DONE OTA_INFLATE_DONE
#define TINF_DATA_ERROR OTA_INFLATE_DATA_ERROR
#define TINF_DICT_ERROR OTA_INFLATE_DICT_ERROR
#define TINF_DATA struct OtaInflateState
#define TINF_TREE struct OtaInflateTree
#define TINF_ARRAY_SIZE(arr) (sizeof(arr) / sizeof(*(arr)))
/* every output byte also goes into the ring window */
#define TINF_PUT(d, c) \
{ \
*d->dest++ = c; \
d->dict_ring[d->dict_idx++] = c; \
if (d->dict_idx == d->dict_size) \
d->dict_idx = 0; \
}
/* --------------------------------------------------- *
* -- constant tables (upstream builds them at runtime) -- *
* --------------------------------------------------- */
static const unsigned char LENGTH_BITS[30] = {0, 0, 0, 0, 0, 0, 0, 0, 1, 1, 1, 1, 2, 2,
2, 2, 3, 3, 3, 3, 4, 4, 4, 4, 5, 5, 5, 5};
static const unsigned short LENGTH_BASE[30] = {3, 4, 5, 6, 7, 8, 9, 10, 11, 13, 15, 17, 19, 23, 27,
31, 35, 43, 51, 59, 67, 83, 99, 115, 131, 163, 195, 227, 258};
static const unsigned char DIST_BITS[30] = {0, 0, 0, 0, 1, 1, 2, 2, 3, 3, 4, 4, 5, 5, 6,
6, 7, 7, 8, 8, 9, 9, 10, 10, 11, 11, 12, 12, 13, 13};
static const unsigned short DIST_BASE[30] = {1, 2, 3, 4, 5, 7, 9, 13, 17, 25,
33, 49, 65, 97, 129, 193, 257, 385, 513, 769,
1025, 1537, 2049, 3073, 4097, 6145, 8193, 12289, 16385, 24577};
/* special ordering of code length codes */
static const unsigned char CLCIDX[] = {16, 17, 18, 0, 8, 7, 9, 6, 10, 5, 11, 4, 12, 3, 13, 2, 14, 1, 15};
/* ----------------------- *
* -- utility functions -- *
* ----------------------- */
/* given an array of code lengths, build a tree */
static void tinf_build_tree(TINF_TREE *t, const unsigned char *lengths, unsigned int num) {
unsigned short offs[16];
unsigned int i, sum;
/* clear code length count table */
for (i = 0; i < 16; ++i)
t->table[i] = 0;
/* scan symbol lengths, and sum code length counts */
for (i = 0; i < num; ++i)
t->table[lengths[i]]++;
/* In the lengths array, 0 means unused code. So, t->table[0] now contains
number of unused codes. But table's purpose is to contain # of codes of
particular length, and there're 0 codes of length 0. */
t->table[0] = 0;
/* compute offset table for distribution sort */
for (sum = 0, i = 0; i < 16; ++i) {
offs[i] = sum;
sum += t->table[i];
}
/* create code->symbol translation table (symbols sorted by code) */
for (i = 0; i < num; ++i) {
if (lengths[i])
t->trans[offs[lengths[i]]++] = i;
}
}
/* ---------------------- *
* -- decode functions -- *
* ---------------------- */
static unsigned char uzlib_get_byte(TINF_DATA *d) {
/* If end of source buffer is not reached, return next byte from source
buffer. */
if (d->source < d->source_limit) {
return *d->source++;
}
/* Otherwise if there's callback and we haven't seen EOF yet, try to
read next byte using it. (Note: the callback can also update ->source
and ->source_limit). */
if (!d->eof) {
int val = d->source_read_cb(d);
if (val >= 0) {
return (unsigned char) val;
}
}
/* Otherwise, we hit EOF (either from ->source_read_cb() or from exhaustion
of the buffer), and it will be "sticky", i.e. further calls to this
function will end up here too. */
d->eof = true;
return 0;
}
/* get one bit from source stream */
static int tinf_getbit(TINF_DATA *d) {
unsigned int bit;
/* check if tag is empty */
if (!d->bitcount--) {
/* load next tag */
d->tag = uzlib_get_byte(d);
d->bitcount = 7;
}
/* shift bit out of tag */
bit = d->tag & 0x01;
d->tag >>= 1;
return bit;
}
/* read a num bit value from a stream and add base */
static unsigned int tinf_read_bits(TINF_DATA *d, int num, int base) {
unsigned int val = 0;
/* read num bits */
if (num) {
unsigned int limit = 1 << (num);
unsigned int mask;
for (mask = 1; mask < limit; mask *= 2)
if (tinf_getbit(d))
val += mask;
}
return val + base;
}
/* given a data stream and a tree, decode a symbol */
static int tinf_decode_symbol(TINF_DATA *d, TINF_TREE *t) {
int sum = 0, cur = 0, len = 0;
/* get more bits while code value is above sum */
do {
cur = 2 * cur + tinf_getbit(d);
if (++len == TINF_ARRAY_SIZE(t->table)) {
return TINF_DATA_ERROR;
}
sum += t->table[len];
cur -= t->table[len];
} while (cur >= 0);
sum += cur;
if (sum < 0 || sum >= t->size) {
return TINF_DATA_ERROR;
}
return t->trans[sum];
}
/* given a data stream, decode dynamic trees from it */
static int tinf_decode_trees(TINF_DATA *d, TINF_TREE *lt, TINF_TREE *dt) {
/* code lengths for 288 literal/len symbols and 32 dist symbols */
unsigned char lengths[288 + 32];
unsigned int hlit, hdist, hclen, hlimit;
unsigned int i, num, length;
/* get 5 bits HLIT (257-286) */
hlit = tinf_read_bits(d, 5, 257);
/* get 5 bits HDIST (1-32) */
hdist = tinf_read_bits(d, 5, 1);
/* get 4 bits HCLEN (4-19) */
hclen = tinf_read_bits(d, 4, 4);
for (i = 0; i < 19; ++i)
lengths[i] = 0;
/* read code lengths for code length alphabet */
for (i = 0; i < hclen; ++i) {
/* get 3 bits code length (0-7) */
unsigned int clen = tinf_read_bits(d, 3, 0);
lengths[CLCIDX[i]] = clen;
}
/* build code length tree, temporarily use length tree */
tinf_build_tree(lt, lengths, 19);
/* decode code lengths for the dynamic trees */
hlimit = hlit + hdist;
for (num = 0; num < hlimit;) {
int sym = tinf_decode_symbol(d, lt);
unsigned char fill_value = 0;
int lbits, lbase = 3;
/* error decoding */
if (sym < 0)
return sym;
switch (sym) {
case 16:
/* copy previous code length 3-6 times (read 2 bits) */
if (num == 0)
return TINF_DATA_ERROR;
fill_value = lengths[num - 1];
lbits = 2;
break;
case 17:
/* repeat code length 0 for 3-10 times (read 3 bits) */
lbits = 3;
break;
case 18:
/* repeat code length 0 for 11-138 times (read 7 bits) */
lbits = 7;
lbase = 11;
break;
default:
/* values 0-15 represent the actual code lengths */
lengths[num++] = sym;
/* continue the for loop */
continue;
}
/* special code length 16-18 are handled here */
length = tinf_read_bits(d, lbits, lbase);
if (num + length > hlimit)
return TINF_DATA_ERROR;
for (; length; --length) {
lengths[num++] = fill_value;
}
}
/* Check that there's "end of block" symbol */
if (lengths[256] == 0) {
return TINF_DATA_ERROR;
}
/* build dynamic trees */
tinf_build_tree(lt, lengths, hlit);
tinf_build_tree(dt, lengths + hlit, hdist);
return TINF_OK;
}
/* build the fixed huffman trees (RFC 1951 3.2.6) through the generic tree
builder; altered from upstream, which unrolls them by hand */
static void tinf_build_fixed_trees(TINF_TREE *lt, TINF_TREE *dt) {
unsigned char lengths[288];
unsigned int i;
for (i = 0; i < 144; ++i)
lengths[i] = 8;
for (; i < 256; ++i)
lengths[i] = 9;
for (; i < 280; ++i)
lengths[i] = 7;
for (; i < 288; ++i)
lengths[i] = 8;
tinf_build_tree(lt, lengths, 288);
for (i = 0; i < 32; ++i)
lengths[i] = 5;
tinf_build_tree(dt, lengths, 32);
}
/* ----------------------------- *
* -- block inflate functions -- *
* ----------------------------- */
/* given a stream and two trees, inflate next chunk of output (a byte or more) */
static int tinf_inflate_block_data(TINF_DATA *d, TINF_TREE *lt, TINF_TREE *dt) {
if (d->curlen == 0) {
unsigned int offs;
int dist;
int sym = tinf_decode_symbol(d, lt);
if (d->eof) {
return TINF_DATA_ERROR;
}
if (sym < 0) {
return sym;
}
/* literal byte */
if (sym < 256) {
TINF_PUT(d, sym);
return TINF_OK;
}
/* end of block */
if (sym == 256) {
return TINF_DONE;
}
/* substring from sliding dictionary */
sym -= 257;
if (sym >= 29) {
return TINF_DATA_ERROR;
}
/* possibly get more bits from length code */
d->curlen = tinf_read_bits(d, LENGTH_BITS[sym], LENGTH_BASE[sym]);
dist = tinf_decode_symbol(d, dt);
if (dist < 0 || dist >= 30) {
return TINF_DATA_ERROR;
}
/* possibly get more bits from distance code */
offs = tinf_read_bits(d, DIST_BITS[dist], DIST_BASE[dist]);
/* calculate and validate actual LZ offset to use */
if (offs > d->dict_size) {
return TINF_DICT_ERROR;
}
/* Note: we don't try to catch offset which points to not yet filled
part of the dictionary here. Doing so would require keeping another
variable to track "filled in" size of the dictionary. Appearance of
such an offset cannot lead to accessing memory outside of the
dictionary buffer, and clients which don't want to leak unrelated
information, should explicitly initialize dictionary buffer passed
to uzlib. */
d->lz_off = d->dict_idx - offs;
if (d->lz_off < 0) {
d->lz_off += d->dict_size;
}
}
/* copy next byte from dict substring */
TINF_PUT(d, d->dict_ring[d->lz_off]);
if ((unsigned) ++d->lz_off == d->dict_size) {
d->lz_off = 0;
}
d->curlen--;
return TINF_OK;
}
/* inflate next byte from uncompressed block of data */
static int tinf_inflate_uncompressed_block(TINF_DATA *d) {
if (d->curlen == 0) {
unsigned int length, invlength;
/* get length */
length = uzlib_get_byte(d);
length += 256 * uzlib_get_byte(d);
/* get one's complement of length */
invlength = uzlib_get_byte(d);
invlength += 256 * uzlib_get_byte(d);
/* check length */
if (length != (~invlength & 0x0000ffff))
return TINF_DATA_ERROR;
/* increment length to properly return TINF_DONE below, without
producing data at the same time */
d->curlen = length + 1;
/* make sure we start next block on a byte boundary */
d->bitcount = 0;
}
if (--d->curlen == 0) {
return TINF_DONE;
}
unsigned char c = uzlib_get_byte(d);
TINF_PUT(d, c);
return TINF_OK;
}
/* ---------------------- *
* -- public functions -- *
* ---------------------- */
/* initialize decompression structure */
void ota_inflate_init(TINF_DATA *d, unsigned char *dict, unsigned int dict_len) {
d->source = NULL;
d->source_limit = NULL;
d->tag = 0;
d->eof = 0;
d->bitcount = 0;
d->lz_off = 0;
d->bfinal = 0;
d->btype = -1;
d->dict_size = dict_len;
d->dict_ring = dict;
d->dict_idx = 0;
d->curlen = 0;
d->ltree.trans = d->ltrans;
d->ltree.size = TINF_ARRAY_SIZE(d->ltrans);
d->dtree.trans = d->dtrans;
d->dtree.size = TINF_ARRAY_SIZE(d->dtrans);
}
/* inflate next output bytes from compressed stream */
int ota_inflate(TINF_DATA *d) {
do {
int res;
/* start a new block */
if (d->btype == -1) {
int old_btype;
next_blk:
old_btype = d->btype;
/* read final block flag */
d->bfinal = tinf_getbit(d);
/* read block type (2 bits) */
d->btype = tinf_read_bits(d, 2, 0);
if (d->btype == 1 && old_btype != 1) {
/* build fixed huffman trees */
tinf_build_fixed_trees(&d->ltree, &d->dtree);
} else if (d->btype == 2) {
/* decode trees from stream */
res = tinf_decode_trees(d, &d->ltree, &d->dtree);
if (res != TINF_OK) {
return res;
}
}
}
/* process current block */
switch (d->btype) {
case 0:
/* decompress uncompressed block */
res = tinf_inflate_uncompressed_block(d);
break;
case 1:
case 2:
/* decompress block with fixed/dynamic huffman trees */
/* trees were decoded previously, so it's the same routine for both */
res = tinf_inflate_block_data(d, &d->ltree, &d->dtree);
break;
default:
return TINF_DATA_ERROR;
}
if (res == TINF_DONE && !d->bfinal) {
/* the block has ended (without producing more data), but we
can't return without data, so start procesing next block */
goto next_blk;
}
if (res != TINF_OK) {
return res;
}
} while (d->dest < d->dest_limit);
return TINF_OK;
}
@@ -0,0 +1,66 @@
#pragma once
// Raw deflate decoder cut down from uzlib (https://github.com/pfalcon/uzlib,
// zlib licence, see the .c file); output goes through a ring window.
#include <stdbool.h>
#include <stdint.h>
#ifdef __cplusplus
extern "C" {
#endif
enum OtaInflateResult {
OTA_INFLATE_OK = 0, /* more data produced, call again */
OTA_INFLATE_DONE = 1, /* end of compressed stream reached */
OTA_INFLATE_DATA_ERROR = -3,
OTA_INFLATE_DICT_ERROR = -5,
};
struct OtaInflateTree {
uint16_t table[16]; /* table of code length counts */
uint16_t *trans; /* code -> symbol translation table, size entries */
uint16_t size;
};
struct OtaInflateState {
/* Next byte in the input buffer and one past its end */
const unsigned char *source;
const unsigned char *source_limit;
/* Called when source is exhausted; returns the next byte or -1 at EOF.
It may refill source/source_limit for buffered operation. */
int (*source_read_cb)(struct OtaInflateState *d);
unsigned int tag;
unsigned int bitcount;
/* Output cursor and one past the end of the output buffer */
unsigned char *dest;
unsigned char *dest_limit;
bool eof;
int btype;
int bfinal;
unsigned int curlen;
int lz_off;
/* Ring window holding the last dict_size output bytes for back references */
unsigned char *dict_ring;
unsigned int dict_size;
unsigned int dict_idx;
struct OtaInflateTree ltree; /* dynamic length/symbol tree */
struct OtaInflateTree dtree; /* dynamic distance tree */
uint16_t ltrans[288];
uint16_t dtrans[32]; /* the distance alphabet has 30 symbols, so the tree is kept small */
};
/* dict must cover the encoder's window (its largest back reference) */
void ota_inflate_init(struct OtaInflateState *d, unsigned char *dict, unsigned int dict_len);
/* Fills dest up to dest_limit (OK) or to the end of the stream (DONE). dest may
alias dict only if dest_limit - dest == dict_len and dest is reset to dict
exactly when a call returns OK, so the ring index and dest stay in lockstep */
int ota_inflate(struct OtaInflateState *d);
#ifdef __cplusplus
}
#endif
@@ -91,7 +91,14 @@ void I2SAudioSpeakerBase::loop() {
this->speaker_task_handle_ = nullptr;
this->stop_i2s_driver_();
xEventGroupClearBits(this->event_group_, SpeakerEventGroupBits::ALL_BITS);
// ALL_BITS includes COMMAND_START. Take the bits from the clear itself, not from the snapshot at
// the top of loop(): the audio source's task can raise a start at any point above, including
// during stop_i2s_driver_(), and nothing would ever re-issue it.
const EventBits_t bits_before_clear = xEventGroupClearBits(this->event_group_, SpeakerEventGroupBits::ALL_BITS);
if (bits_before_clear & SpeakerEventGroupBits::COMMAND_START) {
ESP_LOGD(TAG, "Start requested while stopping; keeping the request");
xEventGroupSetBits(this->event_group_, SpeakerEventGroupBits::COMMAND_START);
}
this->status_clear_error();
this->on_task_stopped();
@@ -5,6 +5,7 @@
#include <esp_log.h>
#include <driver/uart.h>
#include <soc/soc_caps.h>
#ifdef USE_LOGGER_UART_SELECTION_USB_SERIAL_JTAG
#include <driver/usb_serial_jtag.h>
@@ -76,7 +77,11 @@ void init_uart(uart_port_t uart_num, uint32_t baud_rate, int tx_buffer_size) {
uart_config.parity = UART_PARITY_DISABLE;
uart_config.stop_bits = UART_STOP_BITS_1;
uart_config.flow_ctrl = UART_HW_FLOWCTRL_DISABLE;
#if SOC_UART_SUPPORT_XTAL_CLK
uart_config.source_clk = UART_SCLK_XTAL;
#else
uart_config.source_clk = UART_SCLK_DEFAULT;
#endif
uart_param_config(uart_num, &uart_config);
// The logger only writes to UART, never reads, so use the minimum RX buffer.
// ESP-IDF requires rx_buffer_size > UART_HW_FIFO_LEN (128 bytes).
+2 -1
View File
@@ -15,6 +15,7 @@ from ..defines import (
from ..types import LvCompound, LvType
from . import Widget, WidgetType, get_widgets
from .buttonmatrix import CONF_BUTTONMATRIX
from .label import CONF_LABEL
from .textarea import CONF_TEXTAREA, lv_textarea_t
CONF_KEYBOARD = "keyboard"
@@ -49,7 +50,7 @@ class KeyboardType(WidgetType):
)
def get_uses(self):
return CONF_KEYBOARD, CONF_TEXTAREA, CONF_BUTTONMATRIX
return CONF_KEYBOARD, CONF_TEXTAREA, CONF_BUTTONMATRIX, CONF_LABEL
async def to_code(self, w: Widget, config: dict):
add_lv_use("KEY_LISTENER")
+2 -1
View File
@@ -10,6 +10,7 @@ from ..types import lv_obj_t
from . import Widget, WidgetType
from .canvas import CONF_CANVAS
from .img import CONF_IMAGE
from .label import CONF_LABEL
CONF_QRCODE = "qrcode"
CONF_DARK_COLOR = "dark_color"
@@ -41,7 +42,7 @@ class QrCodeType(WidgetType):
)
def get_uses(self):
return CONF_CANVAS, CONF_IMAGE
return CONF_CANVAS, CONF_IMAGE, CONF_LABEL
async def to_code(self, w: Widget, config):
await w.set_property(
+2 -1
View File
@@ -28,6 +28,7 @@ from ..types import LV_EVENT, LvType, ObjUpdateAction, lv_obj_t, lv_obj_t_ptr
from . import Widget, WidgetType, add_widgets, get_widgets, set_obj_properties
from .button import button_spec
from .buttonmatrix import CONF_BUTTONMATRIX, buttonmatrix_spec
from .label import CONF_LABEL
from .obj import obj_spec
CONF_TABVIEW = "tabview"
@@ -74,7 +75,7 @@ class TabviewType(WidgetType):
)
def get_uses(self):
return CONF_BUTTONMATRIX, TYPE_FLEX, CONF_BUTTON
return CONF_BUTTONMATRIX, TYPE_FLEX, CONF_BUTTON, CONF_LABEL
async def to_code(self, w: Widget, config: dict):
await w.set_property(
+3
View File
@@ -67,6 +67,9 @@ void MQTTJSONLightComponent::send_discovery(JsonObject root, mqtt::SendDiscovery
if (traits.supports_color_mode(ColorMode::RGB_COLD_WARM_WHITE))
color_modes.add(ESPHOME_F("rgbww"));
if (traits.supports_color_capability(ColorCapability::BRIGHTNESS))
root[ESPHOME_F("brightness")] = true;
if (traits.supports_color_mode(ColorMode::COLOR_TEMPERATURE) ||
traits.supports_color_mode(ColorMode::COLD_WARM_WHITE)) {
root[MQTT_MIN_MIREDS] = traits.get_min_mireds();
+1 -6
View File
@@ -14,12 +14,7 @@ from esphome.const import (
)
from esphome.core import CORE, TimePeriod
from . import ( # noqa: F401 pylint: disable=unused-import
FILTER_SOURCE_FILES,
Nextion,
nextion_ns,
nextion_ref,
)
from . import FILTER_SOURCE_FILES, Nextion, nextion_ns, nextion_ref # noqa: F401 pylint: disable=unused-import
from .base_component import (
CONF_AUTO_WAKE_ON_TOUCH,
CONF_COMMAND_SPACING,
+6 -1
View File
@@ -7,6 +7,7 @@
#include <concepts>
#include <cstddef>
#include <cstdint>
#include <type_traits>
#ifdef USE_OTA_STATE_LISTENER
#include <vector>
@@ -102,6 +103,8 @@ enum OTAType : uint8_t {
// - set_update_md5: expected digest of the incoming image, hex string.
// - write: consume the next chunk; end: finalize and mark bootable.
// - abort: safe to call in any state, including after end().
// - supports_compression: constexpr, whether a gzip image is stored as is and
// inflated at reboot.
template<typename T>
concept OTABackendContract = requires(T backend, size_t image_size, uint8_t *data, size_t len, const char *md5) {
{ backend.begin(image_size, OTA_TYPE_UPDATE_APP) } -> std::same_as<OTAResponseTypes>;
@@ -110,7 +113,9 @@ concept OTABackendContract = requires(T backend, size_t image_size, uint8_t *dat
{ backend.write(data, len) } -> std::same_as<OTAResponseTypes>;
{ backend.end() } -> std::same_as<OTAResponseTypes>;
backend.abort();
{ backend.supports_compression() } -> std::same_as<bool>;
{ T::supports_compression() } -> std::same_as<bool>;
// The value must be a constant expression
typename std::bool_constant<T::supports_compression()>;
};
/** Listener interface for OTA state changes.
@@ -13,7 +13,7 @@ class ArduinoLibreTinyOTABackend final {
OTAResponseTypes write(uint8_t *data, size_t len);
OTAResponseTypes end();
void abort();
bool supports_compression() { return false; }
static constexpr bool supports_compression() { return false; }
private:
bool md5_set_{false};
@@ -6,6 +6,8 @@
#include "esphome/core/defines.h"
#include "esphome/core/macros.h"
#include <RP2040Version.h>
namespace esphome::ota {
class ArduinoRP2OTABackend final {
@@ -15,7 +17,12 @@ class ArduinoRP2OTABackend final {
OTAResponseTypes write(uint8_t *data, size_t len);
OTAResponseTypes end();
void abort();
bool supports_compression() { return false; }
// The core's OTA stub inflates a staged gzip image at reboot, on every chip
// from 4.0.3 (ESPHome pins 6.0.0). begin() only sees the gzip size; the
// inflated size is known when the stub reads the trailer.
static constexpr bool supports_compression() {
return VERSION_CODE(ARDUINO_PICO_MAJOR, ARDUINO_PICO_MINOR, ARDUINO_PICO_REVISION) >= VERSION_CODE(4, 0, 3);
}
private:
bool md5_set_{false};
+1 -1
View File
@@ -20,7 +20,7 @@ class ESP8266OTABackend final {
OTAResponseTypes end();
void abort();
// Compression supported in all ESP8266 Arduino versions ESPHome supports (>= 2.7.0)
bool supports_compression() { return true; }
static constexpr bool supports_compression() { return true; }
protected:
/// Erase flash sector if current address is at sector boundary
+1 -1
View File
@@ -33,7 +33,7 @@ class IDFOTABackend final {
OTAResponseTypes write(uint8_t *data, size_t len);
OTAResponseTypes end();
void abort();
bool supports_compression() { return false; }
static constexpr bool supports_compression() { return false; }
protected:
#ifdef USE_OTA_PARTITIONS
+3 -2
View File
@@ -25,7 +25,7 @@ struct StubOTABackend {
OTAResponseTypes write(uint8_t *data, size_t len) { return OTA_RESPONSE_ERROR_UNKNOWN; }
OTAResponseTypes end() { return OTA_RESPONSE_ERROR_UNKNOWN; }
void abort() {}
bool supports_compression() { return false; }
static constexpr bool supports_compression() { return false; }
};
std::unique_ptr<StubOTABackend> make_ota_backend();
} // namespace esphome::ota
@@ -33,6 +33,7 @@ std::unique_ptr<StubOTABackend> make_ota_backend();
namespace esphome::ota {
using OTABackendPtr = decltype(make_ota_backend());
static_assert(OTABackendContract<OTABackendPtr::element_type>,
using OTABackend = OTABackendPtr::element_type;
static_assert(OTABackendContract<OTABackend>,
"The platform's OTA backend is missing part of the backend surface (ota_backend.h)");
} // namespace esphome::ota
+1 -1
View File
@@ -19,7 +19,7 @@ class HostOTABackend final {
OTAResponseTypes write(uint8_t *data, size_t len);
OTAResponseTypes end();
void abort();
bool supports_compression() { return false; }
static constexpr bool supports_compression() { return false; }
protected:
md5::MD5Digest md5_{};
+88 -21
View File
@@ -18,6 +18,16 @@ void RFBridgeComponent::ack_() {
}
bool RFBridgeComponent::parse_bridge_byte_(uint8_t byte) {
if (this->bucket_frame_candidate_ && byte == RF_CODE_START) {
// A queued next frame proves the trailing 0x55 really was the bucket
// frame's terminator: Portisch builds pulse entries from alternating
// signal edges, so the two level bits inside one pulse byte are always
// opposite — 0xAA (two high-level nibbles) cannot occur in pulse data.
// Finalize before this byte starts the new frame, so back-to-back
// deliveries are split even when loop() never observed a quiet gap
// between them.
this->finish_bucket_frame_();
}
size_t at = this->rx_buffer_.size();
this->rx_buffer_.push_back(byte);
const uint8_t *raw = &this->rx_buffer_[0];
@@ -84,26 +94,21 @@ bool RFBridgeComponent::parse_bridge_byte_(uint8_t byte) {
break;
}
case RF_CODE_RFIN_BUCKET: {
if (byte != RF_CODE_STOP) {
return true;
if (at == 2) {
// The count byte: Portisch sends at most 7 buckets + sync, so 0 or
// >8 cannot be a genuine capture — reject before it can occupy the
// buffer for a full frame timeout.
return byte != 0 && byte <= B1_MAX_BUCKET_COUNT;
}
uint8_t buckets = raw[2] << 1;
std::string str;
char next_byte[3]; // 2 hex chars + null
for (uint32_t i = 0; i <= at; i++) {
buf_append_printf(next_byte, sizeof(next_byte), 0, "%02X", raw[i]);
str += next_byte;
if ((i > 3) && buckets) {
buckets--;
}
if ((i < 3) || (buckets % 2) || (i == at - 1)) {
str += " ";
}
}
ESP_LOGI(TAG, "Received RFBridge Bucket: %s", str.c_str());
break;
// 0x55 is legal DATA inside a B1 frame: bucket durations are sent
// with only their HIGH byte masked to 7 bits, so a duration such as
// 0x0155 puts a raw 0x55 low byte inside the table — the first 0x55
// must therefore not end the capture. The header declares the table
// length (raw[2] pairs), so a 0x55 there is always data; one at or
// past the first pulse index is a terminator CANDIDATE, confirmed
// once the UART goes quiet (finish_bucket_frame_ in loop()).
this->bucket_frame_candidate_ = byte == RF_CODE_STOP && at >= 3 + static_cast<size_t>(raw[2]) * 2;
return true;
}
default:
ESP_LOGW(TAG, "Unknown action: 0x%02X", action);
@@ -119,6 +124,47 @@ bool RFBridgeComponent::parse_bridge_byte_(uint8_t byte) {
return false;
}
void RFBridgeComponent::finish_bucket_frame_() {
if (this->rx_buffer_.size() < 4) {
// The candidate flag requires a header + non-empty bucket table, so
// this cannot happen while flag and buffer stay consistent; guard the
// raw[2] / size-1 reads against any future divergence anyway.
this->rx_buffer_.clear();
this->bucket_frame_candidate_ = false;
return;
}
const uint8_t *raw = this->rx_buffer_.data();
const size_t at = this->rx_buffer_.size() - 1;
uint8_t buckets = raw[2] << 1;
std::string str;
char next_byte[3]; // 2 hex chars + null
for (uint32_t i = 0; i <= at; i++) {
buf_append_printf(next_byte, sizeof(next_byte), 0, "%02X", raw[i]);
str += next_byte;
if ((i > 3) && buckets) {
buckets--;
}
if ((i < 3) || (buckets % 2) || (i == at - 1)) {
str += " ";
}
}
ESP_LOGI(TAG, "Received RFBridge Bucket: %s", str.c_str());
// Deliberately NOT ACKed: Portisch's B1 command handler leaves its
// last_sniffing_command at the previous mode (RF_CODE_RFIN), and its
// host-ACK handler re-arms sniffing from that stale value — so ACKing a
// bucket delivery silently reverts the radio to standard sniffing and
// ends bucket capture. Its delivery path is fire-and-forget and never
// waits for a host ACK. Stock Itead firmware never sends B1 frames, so
// suppressing this ACK cannot change stock-firmware behavior.
// https://github.com/esphome/esphome/issues/17682
this->rx_buffer_.clear();
this->bucket_frame_candidate_ = false;
}
void RFBridgeComponent::write_byte_str_(const std::string &codes) {
uint8_t code;
int size = codes.length();
@@ -130,12 +176,31 @@ void RFBridgeComponent::write_byte_str_(const std::string &codes) {
void RFBridgeComponent::loop() {
const uint32_t now = App.get_loop_component_start_time();
if (now - this->last_bridge_byte_ > 50) {
size_t avail = this->available();
if (avail == 0 && this->bucket_frame_candidate_ && now - this->last_bridge_byte_ > BUCKET_CANDIDATE_QUIET_MS) {
// The trailing 0x55 was followed by UART quiet, so it really was the
// frame terminator and not an interior data byte.
this->finish_bucket_frame_();
this->last_bridge_byte_ = now;
}
const bool receiving_bucket = this->rx_buffer_.size() >= 2 && this->rx_buffer_[1] == RF_CODE_RFIN_BUCKET;
if (receiving_bucket) {
// Never declare an in-progress bucket frame dead while its continuation
// bytes are already queued: a stalled loop() otherwise discards a live
// frame that the UART buffer proves is still arriving.
if (avail == 0 && now - this->last_bridge_byte_ > BUCKET_FRAME_TIMEOUT_MS) {
ESP_LOGD(TAG, "Discarding incomplete RFBridge Bucket frame (%u bytes)",
static_cast<unsigned>(this->rx_buffer_.size()));
this->rx_buffer_.clear();
this->bucket_frame_candidate_ = false;
this->last_bridge_byte_ = now;
}
} else if (now - this->last_bridge_byte_ > 50) {
this->rx_buffer_.clear();
this->bucket_frame_candidate_ = false;
this->last_bridge_byte_ = now;
}
size_t avail = this->available();
while (avail > 0) {
uint8_t buf[64];
size_t to_read = std::min(avail, sizeof(buf));
@@ -146,12 +211,14 @@ void RFBridgeComponent::loop() {
for (size_t i = 0; i < to_read; i++) {
if (this->rx_buffer_.size() > MAX_RX_BUFFER_SIZE) {
this->rx_buffer_.clear();
this->bucket_frame_candidate_ = false;
}
if (this->parse_bridge_byte_(buf[i])) {
ESP_LOGVV(TAG, "Parsed: 0x%02X", buf[i]);
this->last_bridge_byte_ = now;
} else {
this->rx_buffer_.clear();
this->bucket_frame_candidate_ = false;
}
}
}
+13
View File
@@ -30,6 +30,17 @@ static const uint8_t RF_CODE_BEEP = 0xC0;
static const uint8_t RF_CODE_STOP = 0x55;
static const uint8_t RF_DEBOUNCE = 200;
static const size_t MAX_RX_BUFFER_SIZE = 512;
// ~10 byte times at 19200 baud: long enough to prove the UART went quiet
// after a possible bucket-frame terminator, short enough to finish well
// before the next radio capture can be delivered.
static const uint32_t BUCKET_CANDIDATE_QUIET_MS = 5;
// Portisch drains a B1 frame's header, bucket table, and pulse data as
// separate UART writes, so an in-progress bucket frame tolerates a longer
// inter-region gap than the generic 50 ms inter-byte timeout.
static const uint32_t BUCKET_FRAME_TIMEOUT_MS = 250;
// Portisch's uart_put_RF_buckets sends at most 7 buckets plus the sync
// bucket, so a B1 count byte above 8 (or 0) is malformed for any protocol.
static const uint8_t B1_MAX_BUCKET_COUNT = 8;
struct RFBridgeData {
uint16_t sync;
@@ -67,10 +78,12 @@ class RFBridgeComponent final : public uart::UARTDevice, public Component {
void ack_();
void decode_();
bool parse_bridge_byte_(uint8_t byte);
void finish_bucket_frame_();
void write_byte_str_(const std::string &codes);
std::vector<uint8_t> rx_buffer_;
uint32_t last_bridge_byte_{0};
bool bucket_frame_candidate_{false};
CallbackManager<void(RFBridgeData)> data_callback_;
CallbackManager<void(RFBridgeAdvancedData)> advanced_data_callback_;
+14 -3
View File
@@ -1,10 +1,13 @@
#include "tuya.h"
#include "esphome/components/network/util.h"
#include "esphome/core/gpio.h"
#include "esphome/core/helpers.h"
#include "esphome/core/log.h"
#include "esphome/core/util.h"
#ifdef USE_NETWORK
#include "esphome/components/network/util.h"
#endif
#ifdef USE_WIFI
#include "esphome/components/wifi/wifi_component.h"
#endif
@@ -22,6 +25,14 @@ static const int MAX_RETRIES = 5;
// Max bytes to log for datapoint values (larger values are truncated)
static constexpr size_t MAX_DATAPOINT_LOG_BYTES = 16;
static bool network_is_connected() {
#ifdef USE_NETWORK
return network::is_connected();
#else
return false;
#endif
}
void Tuya::setup() {
this->set_interval("heartbeat", 15000, [this] { this->send_empty_command_(TuyaCommandType::HEARTBEAT); });
if (this->status_pin_ != nullptr) {
@@ -554,14 +565,14 @@ void Tuya::send_empty_command_(TuyaCommandType command) {
}
void Tuya::set_status_pin_() {
bool is_network_ready = network::is_connected() && remote_is_connected();
bool is_network_ready = network_is_connected() && remote_is_connected();
this->status_pin_->digital_write(is_network_ready);
}
uint8_t Tuya::get_wifi_status_code_() {
uint8_t status = 0x02;
if (network::is_connected()) {
if (network_is_connected()) {
status = 0x03;
// Protocol version 3 also supports specifying when connected to "the cloud"
+4 -12
View File
@@ -1,5 +1,4 @@
from collections.abc import Callable
from typing import Any, NoReturn
from typing import Any
from esphome import automation
from esphome.automation import Trigger
@@ -48,17 +47,10 @@ UDP_SCHEMA = cv.Schema(
)
def is_relocated(option: str) -> Callable[[Any], NoReturn]:
def validator(value: Any) -> NoReturn:
raise cv.Invalid(
f"The '{option}' option should now be configured in the 'packet_transport' component"
)
return validator
RELOCATED = {
cv.Optional(x): is_relocated(x)
cv.Optional(x): cv.invalid(
f"The '{x}' option should now be configured in the 'packet_transport' component"
)
for x in (
CONF_PROVIDERS,
CONF_ENCRYPTION,
+1
View File
@@ -244,6 +244,7 @@
#define USE_RUNTIME_IMAGE_QOI
#define USE_RUNTIME_STATS
#define USE_OTA
#define USE_OTA_DEFLATE
#define USE_OTA_ENCRYPTION
#define USE_OTA_ENCRYPTION_FROM_API
#define USE_OTA_ENCRYPTION_PROVISIONED
+4 -16
View File
@@ -22,10 +22,6 @@ namespace esphome {
* pointer. When it is default constructed, it has empty string. You can freely copy or move around this struct, but
* never free its pointer. str() function can be used to export the content as std::string. StringRef is adopted from
* <https://github.com/nghttp2/nghttp2/blob/29cbf8b83ff78faf405d1086b16adc09a8772eca/src/template.h#L376>
*
* A StringRef may carry a null pointer while its length is zero (the generated api messages start their encode only
* string fields that way). Every member treats that as the empty string; only c_str() hands the null pointer on, so
* callers that print or copy through c_str() must check empty() first.
*/
class StringRef {
public:
@@ -82,7 +78,7 @@ class StringRef {
/// True if the view begins with the given prefix (std::string::starts_with-like)
bool starts_with(const StringRef &prefix) const {
return len_ >= prefix.len_ && (prefix.len_ == 0 || std::memcmp(base_, prefix.base_, prefix.len_) == 0);
return len_ >= prefix.len_ && std::memcmp(base_, prefix.base_, prefix.len_) == 0;
}
bool starts_with(const char *prefix) const { return this->starts_with(StringRef(prefix)); }
bool starts_with(const std::string &prefix) const { return this->starts_with(StringRef(prefix)); }
@@ -96,15 +92,14 @@ class StringRef {
return actual;
}
std::string str() const { return std::string(base_, len_); } // fine for {nullptr, 0}: nothing is read
std::string str() const { return std::string(base_, len_); }
const uint8_t *byte() const { return reinterpret_cast<const uint8_t *>(base_); }
operator std::string() const { return str(); }
/// Compare (compatible with std::string::compare)
int compare(const StringRef &other) const {
size_type common = std::min(len_, other.len_);
int result = common == 0 ? 0 : std::memcmp(base_, other.base_, common);
int result = std::memcmp(base_, other.base_, std::min(len_, other.len_));
if (result != 0)
return result;
if (len_ < other.len_)
@@ -263,14 +258,7 @@ inline double stod(const StringRef &str, size_t *pos = nullptr) {
#ifdef USE_JSON
// NOLINTNEXTLINE(readability-identifier-naming)
inline void convertToJson(const StringRef &src, JsonVariant dst) {
// Bounded by the view length; a null, empty view becomes "" rather than JSON null
if (src.empty()) {
dst.set("");
return;
}
dst.set(JsonString(src.c_str(), src.size()));
}
inline void convertToJson(const StringRef &src, JsonVariant dst) { dst.set(src.c_str()); }
#endif // USE_JSON
} // namespace esphome
+27 -10
View File
@@ -11,6 +11,7 @@ import secrets
import socket
import time
from typing import Any
import zlib
from esphome.core import EsphomeError
from esphome.helpers import ProgressBar, resolve_ip_address
@@ -65,9 +66,15 @@ CLIENT_FEATURE_SUPPORTS_COMPRESSION = 0x01
CLIENT_FEATURE_SUPPORTS_SHA256_AUTH = 0x02
CLIENT_FEATURE_SUPPORTS_EXTENDED_PROTOCOL = 0x04
CLIENT_FEATURE_SUPPORTS_NOISE = 0x08
CLIENT_FEATURE_SUPPORTS_DEFLATE = 0x10
SERVER_FEATURE_SUPPORTS_COMPRESSION = 0x01
SERVER_FEATURE_SUPPORTS_PARTITION_ACCESS = 0x02
SERVER_FEATURE_SUPPORTS_NOISE = 0x04
# Binding once offered: the device then expects the image size and a deflate stream
SERVER_FEATURE_SUPPORTS_DEFLATE = 0x08
# Wire constant: the deflate bit promises a 4 KB window (OTA_INFLATE_WINDOW_SIZE)
DEFLATE_WINDOW_BITS = 12
NOISE_FRAME_INDICATOR = 0x01
NOISE_HANDSHAKE_OK = 0x00
@@ -87,6 +94,9 @@ _SUPPORTED_OTA_TYPES: frozenset[int] = frozenset(
)
UPLOAD_BLOCK_SIZE = 8192
# Sizes on the wire are 4 bytes MSB first
SIZE_FIELD_BYTES = 4
COMPRESS_LEVEL = 9
UPLOAD_BUFFER_SIZE = UPLOAD_BLOCK_SIZE * 8
# Flaky Wi-Fi links often drop the first OTA attempt, and the device may need time
@@ -547,6 +557,7 @@ def perform_ota(
CLIENT_FEATURE_SUPPORTS_COMPRESSION
| CLIENT_FEATURE_SUPPORTS_SHA256_AUTH
| CLIENT_FEATURE_SUPPORTS_EXTENDED_PROTOCOL
| CLIENT_FEATURE_SUPPORTS_DEFLATE
)
if noise_psk:
features_to_send |= CLIENT_FEATURE_SUPPORTS_NOISE
@@ -640,8 +651,16 @@ def perform_ota(
f"retry {flag_name}."
)
if features & SERVER_FEATURE_SUPPORTS_COMPRESSION:
upload_contents = gzip.compress(file_contents, compresslevel=9)
deflate = bool(extended_proto and features & SERVER_FEATURE_SUPPORTS_DEFLATE)
if deflate:
# The device inflates while receiving through a small ring window
upload_contents = zlib.compress(
file_contents, COMPRESS_LEVEL, wbits=-DEFLATE_WINDOW_BITS
)
_LOGGER.info("Compressed to %s bytes (deflate)", len(upload_contents))
elif features & SERVER_FEATURE_SUPPORTS_COMPRESSION:
# The device stores the gzip file and inflates it when it reboots
upload_contents = gzip.compress(file_contents, compresslevel=COMPRESS_LEVEL)
_LOGGER.info("Compressed to %s bytes", len(upload_contents))
else:
upload_contents = file_contents
@@ -701,22 +720,20 @@ def perform_ota(
send_check(sock, ota_type, "ota type")
upload_size = len(upload_contents)
upload_size_encoded = [
(upload_size >> 24) & 0xFF,
(upload_size >> 16) & 0xFF,
(upload_size >> 8) & 0xFF,
(upload_size >> 0) & 0xFF,
]
# The device erases flash between receiving the size and acking the
# prepare, so this window shows the erase cost (near zero when the
# device erases lazily during the upload)
prepare_start = time.perf_counter()
send_check(sock, upload_size_encoded, "binary size")
send_check(sock, upload_size.to_bytes(SIZE_FIELD_BYTES, "big"), "binary size")
if deflate:
# Own frame: an encrypted session carries one field per frame
send_check(sock, file_size.to_bytes(SIZE_FIELD_BYTES, "big"), "image size")
receive_exactly(sock, 1, "update prepare result", RESPONSE_UPDATE_PREPARE_OK)
prepare_duration = time.perf_counter() - prepare_start
_LOGGER.info("Preparing for upload took %.2f seconds", prepare_duration)
upload_md5 = hashlib.md5(upload_contents).hexdigest()
# The device hashes what it writes: the inflated image, else the received bytes
upload_md5 = hashlib.md5(file_contents if deflate else upload_contents).hexdigest()
_LOGGER.debug("MD5 of upload is %s", upload_md5)
send_check(sock, upload_md5, "file checksum")
+1 -4
View File
@@ -69,10 +69,7 @@ def _make_create_connection() -> Callable[..., socket.socket]:
from aiohappyeyeballs import start_connection
from urllib3.exceptions import LocationParseError
from urllib3.util.connection import ( # noqa: PLC2701
_set_socket_options,
allowed_gai_family,
)
from urllib3.util.connection import _set_socket_options, allowed_gai_family # noqa: PLC2701
from urllib3.util.timeout import _DEFAULT_TIMEOUT # noqa: PLC2701
from esphome import async_thread
+5 -1
View File
@@ -616,11 +616,15 @@ def _make_registry_client() -> Any:
elsewhere, not by the PlatformIO registry.
"""
from platformio.package.manager._registry import PackageManagerRegistryMixin
from platformio.registry.client import RegistryClient
class _Registry(PackageManagerRegistryMixin):
def __init__(self) -> None:
self._registry_client = None
self.pkg_type = "library"
self._registry_client = RegistryClient()
# The probe sleeps ~500 ms per lookup (see runner.patch_registry_private_packages);
# instance-level so the ESPHome process never patches PlatformIO's class
self._registry_client.allowed_private_packages = lambda: False
@staticmethod
def is_system_compatible(value: Any, custom_system: Any = None) -> bool:
+2
View File
@@ -951,8 +951,10 @@ def main(argv: list[str]) -> int:
"""Subprocess entry point: ``prefetch <build_dir> <env_name>``."""
from esphome.core import CORE
from esphome.log import setup_log
from esphome.platformio.runner import patch_registry_private_packages
signal.signal(signal.SIGTERM, _sigterm)
patch_registry_private_packages()
raw_level = os.environ.get("ESPHOME_PREFETCH_LOG_LEVEL")
try:
level = int(raw_level) if raw_level is not None else logging.INFO
+13 -1
View File
@@ -2,7 +2,8 @@
Invoked via ``python -m esphome.platformio.runner`` instead of
``python -m platformio`` so that the patches (incremental rebuild
preservation, download retries) apply inside the subprocess. Running
preservation, download retries, skipping the private-package probe) apply
inside the subprocess. Running
PlatformIO in a subprocess keeps its ``sys.path`` mutations and other
global state from leaking into the ESPHome process.
"""
@@ -105,6 +106,16 @@ def patch_file_downloader() -> None:
FileDownloader.__init__ = patched_init
def patch_registry_private_packages() -> None:
"""Skip PlatformIO's private-package probe; it sleeps ~500 ms per lookup.
ESPHome never uses private packages, so the answer is always False.
"""
from platformio.registry.client import RegistryClient
RegistryClient.allowed_private_packages = staticmethod(lambda: False) # type: ignore[method-assign]
_IGNORE_LIB_WARNINGS = "(?:Hash|Update)"
# Regex patterns matched against each line of PlatformIO output. Lines that
# match are dropped by RedirectText before they reach the parent process.
@@ -152,6 +163,7 @@ FILTER_PLATFORMIO_LINES = [
def main() -> int:
patch_structhash()
patch_file_downloader()
patch_registry_private_packages()
# Wrap stdout/stderr with RedirectText before PlatformIO runs:
#
+2 -2
View File
@@ -1,4 +1,4 @@
# Useful stuff when working in a development environment
clang-format==13.0.1 # also change in .pre-commit-config.yaml and Dockerfile when updating
clang-format==13.0.1 # .pre-commit-config.yaml rev synced by script/sync_dependency_versions.py
clang-tidy==22.1.8
yamllint==1.38.0 # also change in .pre-commit-config.yaml when updating
yamllint==1.38.0 # .pre-commit-config.yaml rev synced by script/sync_dependency_versions.py
+5 -4
View File
@@ -1,8 +1,9 @@
pylint==4.0.8
flake8==7.3.0 # also change in .pre-commit-config.yaml when updating
ruff==0.16.5 # also change in .pre-commit-config.yaml when updating
pyupgrade==3.21.2 # also change in .pre-commit-config.yaml when updating
prek==0.5.1 # also change in .github/workflows/ci.yml when updating
flake8==7.3.0 # .pre-commit-config.yaml rev synced by script/sync_dependency_versions.py
ruff==0.16.6 # .pre-commit-config.yaml rev synced by script/sync_dependency_versions.py
pyupgrade==3.21.2 # .pre-commit-config.yaml rev synced by script/sync_dependency_versions.py
prek==0.5.2 # .github/workflows/ci.yml reads this pin
yamlrocks==0.6.1 # used by script/sync_dependency_versions.py
# Unit tests
pytest==9.1.1
+300 -239
View File
@@ -28,11 +28,6 @@ class WireType(IntEnum):
END_GROUP = 4 # groups (deprecated)
FIXED32 = 5 # fixed32, sfixed32, float
@property
def cpp_name(self) -> str:
"""The matching constant in proto.h."""
return f"WIRE_TYPE_{self.name}"
# Generate with
# protoc --python_out=script/api_protobuf -I esphome/components/api/ api_options.proto
@@ -131,10 +126,9 @@ def camel_to_snake(name: str) -> str:
return re.sub("([a-z0-9])([A-Z])", r"\1_\2", s1).lower()
def _encode_call(func: str, *args: str, force: bool = False) -> str:
"""Emit one ProtoEncode call; every helper takes the cursor and returns it advanced."""
suffix = "_force" if force else ""
return f"pos = ProtoEncode::{func}{suffix}({', '.join(('pos', *args))});"
def force_str(force: bool) -> str:
"""Convert a boolean force value to string format for C++ code."""
return str(force).lower()
class TypeInfo(ABC):
@@ -229,39 +223,55 @@ class TypeInfo(ABC):
def class_member(self) -> str:
return f"{self.cpp_type} {self.field_name}{{{self.default_value}}};"
def decode_case(self, body: str) -> str:
"""Emit one decode_field() case, keyed on the field's wire tag."""
return f"case proto_tag({self.number}, {self.wire_type.cpp_name}):\n" + indent(
f"{body}\nbreak;"
)
@property
def decode_varint_content(self) -> str:
content = self.decode_varint
if content is None:
return None
return f"case {self.number}: this->{self.field_name} = {content}; break;"
# Expression that reads this field from `value`; None when the type is never decoded.
decode_expr: str | None = None
def _decode_store(self, expr: str) -> str:
return f"this->{self.field_name} = {expr};"
decode_varint = None
@property
def decode_content(self) -> str | None:
"""The decode_field() case for this field, or None when it is never decoded."""
expr = self.decode_expr
return None if expr is None else self.decode_case(self._decode_store(expr))
def decode_length_content(self) -> str:
content = self.decode_length
if content is None:
return None
return f"case {self.number}: this->{self.field_name} = {content}; break;"
decode_length = None
@property
def decode_32bit_content(self) -> str:
content = self.decode_32bit
if content is None:
return None
return f"case {self.number}: this->{self.field_name} = {content}; break;"
decode_32bit = None
@property
def decode_64bit_content(self) -> str:
content = self.decode_64bit
if content is None:
return None
return f"case {self.number}: this->{self.field_name} = {content}; break;"
decode_64bit = None
# Mapping from encode_func to raw encode expression template.
# When a forced field has a single-byte tag, the code generator emits
# write_raw_byte(tag) + raw encode instead of the full encode_* method,
# eliminating the zero-check branch and encode_field_raw indirection.
# {value} is replaced with the actual field expression.
RAW_ENCODE_MAP: dict[str, tuple[str, str]] = {
"encode_uint32": ("encode_varint_raw", "{value}"),
"encode_uint64": ("encode_varint_raw_64", "{value}"),
"encode_sint32": ("encode_varint_raw_short", "encode_zigzag32({value})"),
"encode_sint64": ("encode_varint_raw_64", "encode_zigzag64({value})"),
"encode_int64": ("encode_varint_raw_64", "static_cast<uint64_t>({value})"),
"encode_bool": ("write_raw_byte", "{value} ? 0x01 : 0x00"),
RAW_ENCODE_MAP: dict[str, str] = {
"encode_uint32": "ProtoEncode::encode_varint_raw(pos, {value});",
"encode_uint64": "ProtoEncode::encode_varint_raw_64(pos, {value});",
"encode_sint32": "ProtoEncode::encode_varint_raw_short(pos, encode_zigzag32({value}));",
"encode_sint64": "ProtoEncode::encode_varint_raw_64(pos, encode_zigzag64({value}));",
"encode_int64": "ProtoEncode::encode_varint_raw_64(pos, static_cast<uint64_t>({value}));",
"encode_bool": "ProtoEncode::write_raw_byte(pos, {value} ? 0x01 : 0x00);",
}
# Fixed32 value expression for the shared tag+fixed32 writer; None for other wire types
fixed32_value_template: str | None = None
def _encode_with_precomputed_tag(self, value_expr: str) -> str | None:
"""Try to emit a precomputed-tag encode for a field.
@@ -278,17 +288,12 @@ class TypeInfo(ABC):
return None
max_val = self.max_value
# Only use RAW_ENCODE_MAP for forced fields or fields with max_value
raw = None
raw_expr = None
if self.force or max_val is not None:
raw = self.RAW_ENCODE_MAP.get(self.encode_func)
if raw is None:
raw_expr = self.RAW_ENCODE_MAP.get(self.encode_func)
if raw_expr is None:
return None
func, arg = raw
body = (
_encode_call("write_raw_byte", str(tag))
+ "\n"
+ _encode_call(func, arg.format(value=value_expr))
)
body = f"ProtoEncode::write_raw_byte(pos, {tag});\n{raw_expr.format(value=value_expr)}"
if self.force:
return body
# Non-forced with max_value: inline zero-check + raw encode
@@ -309,44 +314,23 @@ class TypeInfo(ABC):
return None
# When max_len < 128, length varint is always 1 byte
len_encode = (
_encode_call("write_raw_byte", f"static_cast<uint8_t>({len_expr})")
f"ProtoEncode::write_raw_byte(pos, static_cast<uint8_t>({len_expr}));"
if max_len is not None and max_len < 128
else _encode_call("encode_varint_raw", len_expr)
else f"ProtoEncode::encode_varint_raw(pos, {len_expr});"
)
return "\n".join(
(
_encode_call("write_raw_byte", str(tag)),
len_encode,
_encode_call("encode_raw", data_expr, len_expr),
)
)
def _encode_fixed32_with_precomputed_tag(self, value: str) -> str | None:
"""Single-byte tag fixed32 write, or None for other types and multi-byte tags."""
tag = self.calculate_tag()
if self.fixed32_value_template is None or tag >= 128:
return None
value_expr = self.fixed32_value_template.format(value=value)
if self.force:
return _encode_call("write_tag_and_fixed32", str(tag), value_expr)
return (
f"if (uint32_t raw = {value_expr}; raw != 0) [[likely]] {{\n"
f" {_encode_call('write_tag_and_fixed32', str(tag), 'raw')}\n"
"}"
f"ProtoEncode::write_raw_byte(pos, {tag});\n"
f"{len_encode}\n"
f"ProtoEncode::encode_raw(pos, {data_expr}, {len_expr});"
)
@property
def encode_content(self) -> str:
value = f"this->{self.field_name}"
if result := self._encode_with_precomputed_tag(value):
if result := self._encode_with_precomputed_tag(f"this->{self.field_name}"):
return result
if result := self._encode_fixed32_with_precomputed_tag(value):
return result
return _encode_call(self.encode_func, str(self.number), value, force=self.force)
def encode_element(self, number: int, element: str) -> str:
"""Encode one element of a repeated field; elements are always written."""
return _encode_call(self.encode_func, str(number), element, force=True)
if self.force:
return f"ProtoEncode::{self.encode_func}(pos, {self.number}, this->{self.field_name}, true);"
return f"ProtoEncode::{self.encode_func}(pos, {self.number}, this->{self.field_name});"
encode_func = None
@@ -566,17 +550,17 @@ def create_field_type_info(
# For messages that decode (SOURCE_CLIENT or SOURCE_BOTH), use pointer
# for zero-copy access to the receive buffer
if needs_decode:
return PointerToBytesBufferType(field, needs_decode)
return PointerToBytesBufferType(field, None)
# For SOURCE_SERVER (encode only), explicit annotation is still needed
if get_field_opt(field, pb.pointer_to_buffer, False):
return PointerToBytesBufferType(field, needs_decode)
return PointerToBytesBufferType(field, None)
return BytesType(field, needs_decode, needs_encode)
# Special handling for string fields - use StringRef for zero-copy
if field.type == 9:
return PointerToStringBufferType(field, needs_decode)
return PointerToStringBufferType(field, None)
validate_field_type(field.type, field.name)
if field.type == 11:
@@ -621,6 +605,7 @@ class DoubleType(FixedSizeTypeMixin, TypeInfo):
# Unsupported but defined for completeness
cpp_type = "double"
default_value = "0.0"
decode_64bit = "value.as_double()"
encode_func = "encode_double"
wire_type = WireType.FIXED64 # Uses wire type 1 according to protobuf spec
@@ -646,12 +631,10 @@ class DoubleType(FixedSizeTypeMixin, TypeInfo):
class FloatType(FixedSizeTypeMixin, TypeInfo):
cpp_type = "float"
default_value = "0.0f"
decode_expr = "value.as_float()"
decode_32bit = "value.as_float()"
encode_func = "encode_float"
wire_type = WireType.FIXED32 # Uses wire type 5
fixed32_value_template = "float_to_raw({value})"
def dump(self, name: str) -> str:
o = f'snprintf(buffer, sizeof(buffer), "%g", {name});\n'
o += "out.append(buffer);"
@@ -675,7 +658,7 @@ class Int64Type(VarintTypeMixin, TypeInfo):
cpp_type = "int64_t"
_varint_max_bits = 64
default_value = "0"
decode_expr = "static_cast<int64_t>(value.as_varint())"
decode_varint = "static_cast<int64_t>(value)"
encode_func = "encode_int64"
wire_type = WireType.VARINT # Uses wire type 0
@@ -696,7 +679,7 @@ class UInt64Type(VarintTypeMixin, TypeInfo):
cpp_type = "uint64_t"
_varint_max_bits = 64
default_value = "0"
decode_expr = "value.as_varint()"
decode_varint = "value"
encode_func = "encode_uint64"
wire_type = WireType.VARINT # Uses wire type 0
@@ -714,11 +697,11 @@ class UInt64Type(VarintTypeMixin, TypeInfo):
return self._get_simple_size_calculation(name, force, "uint64")
@property
def RAW_ENCODE_MAP(self) -> dict[str, tuple[str, str]]: # noqa: N802
def RAW_ENCODE_MAP(self) -> dict[str, str]: # noqa: N802
if self.mac_address:
return {
**TypeInfo.RAW_ENCODE_MAP,
"encode_uint64": ("encode_varint_raw_48bit", "{value}"),
"encode_uint64": "ProtoEncode::encode_varint_raw_48bit(pos, {value});",
}
return TypeInfo.RAW_ENCODE_MAP
@@ -731,7 +714,7 @@ class Int32Type(VarintTypeMixin, TypeInfo):
cpp_type = "int32_t"
_varint_max_bits = 64 # int32 is sign-extended to 64 bits in protobuf
default_value = "0"
decode_expr = "static_cast<int32_t>(value.as_varint())"
decode_varint = "static_cast<int32_t>(value)"
encode_func = "encode_int32"
wire_type = WireType.VARINT # Uses wire type 0
@@ -751,6 +734,7 @@ class Int32Type(VarintTypeMixin, TypeInfo):
class Fixed64Type(FixedSizeTypeMixin, TypeInfo):
cpp_type = "uint64_t"
default_value = "0"
decode_64bit = "value.as_fixed64()"
encode_func = "encode_fixed64"
wire_type = WireType.FIXED64 # Uses wire type 1
@@ -776,7 +760,7 @@ class Fixed64Type(FixedSizeTypeMixin, TypeInfo):
class Fixed32Type(FixedSizeTypeMixin, TypeInfo):
cpp_type = "uint32_t"
default_value = "0"
decode_expr = "value.as_fixed32()"
decode_32bit = "value.as_fixed32()"
encode_func = "encode_fixed32"
wire_type = WireType.FIXED32 # Uses wire type 5
@@ -785,7 +769,15 @@ class Fixed32Type(FixedSizeTypeMixin, TypeInfo):
o += "out.append(buffer);"
return o
fixed32_value_template = "{value}"
@property
def encode_content(self) -> str:
tag = self.calculate_tag()
if self.force and tag < 128:
# Emit combined tag+value write: precomputed tag + direct memcpy
return f"ProtoEncode::write_tag_and_fixed32(pos, {tag}, this->{self.field_name});"
if self.force:
return f"ProtoEncode::{self.encode_func}(pos, {self.number}, this->{self.field_name}, true);"
return f"ProtoEncode::{self.encode_func}(pos, {self.number}, this->{self.field_name});"
def get_size_calculation(self, name: str, force: bool = False) -> str:
field_id_size = self.calculate_field_id_size()
@@ -805,7 +797,7 @@ class BoolType(VarintTypeMixin, TypeInfo):
_varint_max_bits = 1
cpp_type = "bool"
default_value = "false"
decode_expr = "value.as_bool()"
decode_varint = "value != 0"
encode_func = "encode_bool"
wire_type = WireType.VARINT # Uses wire type 0
@@ -825,7 +817,7 @@ class StringType(TypeInfo):
default_value = ""
reference_type = "std::string &"
const_reference_type = "const std::string &"
decode_expr = "value.as_string()"
decode_length = "value.as_string()"
encode_func = "encode_string"
wire_type = WireType.LENGTH_DELIMITED # Uses wire type 2
@@ -859,12 +851,9 @@ class StringType(TypeInfo):
f"this->{self.field_name}_ref_.size()",
):
return result
return _encode_call(
"encode_string",
str(self.number),
f"this->{self.field_name}_ref_",
force=self.force,
)
if self.force:
return f"ProtoEncode::encode_string(pos, {self.number}, this->{self.field_name}_ref_, true);"
return f"ProtoEncode::encode_string(pos, {self.number}, this->{self.field_name}_ref_);"
def dump(self, name):
# If name is 'it', this is a repeated field element - always use string
@@ -940,9 +929,6 @@ class MessageType(TypeInfo):
def can_use_dump_field(cls) -> bool:
return False
def encode_element(self, number: int, element: str) -> str:
return _encode_call("encode_sub_message", "buffer", str(number), element)
@property
def cpp_type(self) -> str:
return self._field.type_name[1:]
@@ -965,9 +951,15 @@ class MessageType(TypeInfo):
@property
def encode_content(self) -> str:
# Sub-message encoding needs buffer for backpatch/sync
return _encode_call(
self.encode_func, "buffer", str(self.number), f"this->{self.field_name}"
)
return f"ProtoEncode::{self.encode_func}(pos, buffer, {self.number}, this->{self.field_name});"
@property
def decode_length(self) -> str:
# Override to return None for message types because we can't use template-based
# decoding when the specific message type isn't known at compile time.
# Instead, we use the non-template decode_to_message() method which allows
# runtime polymorphism through virtual function calls.
return None
@property
def public_content(self) -> list[str]:
@@ -984,14 +976,19 @@ class MessageType(TypeInfo):
)
@property
def decode_content(self) -> str:
body = f"value.decode_to_message(this->{self.field_name});"
def decode_length_content(self) -> str:
# Custom decode that doesn't use templates
if self._track_presence:
# decode_to_message() cannot report failure, so setting the flag
# afterwards only documents intent; a status-returning decode could
# gate it for real without touching callers.
body += f"\nthis->has_{self.name} = true;"
return self.decode_case(body)
return (
f"case {self.number}:\n"
f" value.decode_to_message(this->{self.field_name});\n"
f" this->has_{self.name} = true;\n"
f" break;"
)
return f"case {self.number}: value.decode_to_message(this->{self.field_name}); break;"
def dump(self, name: str) -> str:
return f"{name}.dump_to(out);"
@@ -1030,7 +1027,7 @@ class BytesType(TypeInfo):
reference_type = "std::string &"
const_reference_type = "const std::string &"
encode_func = "encode_bytes"
decode_expr = "value.as_string()"
decode_length = "value.as_string()"
wire_type = WireType.LENGTH_DELIMITED # Uses wire type 2
@property
@@ -1061,13 +1058,9 @@ class BytesType(TypeInfo):
f"this->{self.field_name}_ptr_", f"this->{self.field_name}_len_"
):
return result
return _encode_call(
"encode_bytes",
str(self.number),
f"this->{self.field_name}_ptr_",
f"this->{self.field_name}_len_",
force=self.force,
)
if self.force:
return f"ProtoEncode::encode_bytes(pos, {self.number}, this->{self.field_name}_ptr_, this->{self.field_name}_len_, true);"
return f"ProtoEncode::encode_bytes(pos, {self.number}, this->{self.field_name}_ptr_, this->{self.field_name}_len_);"
def dump(self, name: str) -> str:
ptr_dump = f"format_hex_pretty(this->{self.field_name}_ptr_, this->{self.field_name}_len_)"
@@ -1134,12 +1127,16 @@ class PointerToBufferTypeBase(TypeInfo):
def can_use_dump_field(cls) -> bool:
return False
# Only here to make needs_decode required: the null string default keys off it, so a call
# site must not fall back on the base class default
def __init__(
self, field: descriptor.FieldDescriptorProto, needs_decode: bool
self, field: descriptor.FieldDescriptorProto, size: int | None = None
) -> None:
super().__init__(field, needs_decode)
super().__init__(field)
self.array_size = 0
@property
def decode_length(self) -> str | None:
# This is handled in decode_length_content
return None
@property
def wire_type(self) -> WireType:
@@ -1173,20 +1170,17 @@ class PointerToBytesBufferType(PointerToBufferTypeBase):
f"this->{self.field_name}", f"this->{self.field_name}_len"
):
return result
return _encode_call(
"encode_bytes",
str(self.number),
f"this->{self.field_name}",
f"this->{self.field_name}_len",
force=self.force,
)
if self.force:
return f"ProtoEncode::encode_bytes(pos, {self.number}, this->{self.field_name}, this->{self.field_name}_len, true);"
return f"ProtoEncode::encode_bytes(pos, {self.number}, this->{self.field_name}, this->{self.field_name}_len);"
@property
def decode_content(self) -> str:
return self.decode_case(
f"this->{self.field_name} = value.data();\n"
f"this->{self.field_name}_len = value.size();",
)
def decode_length_content(self) -> str | None:
return f"""case {self.number}: {{
this->{self.field_name} = value.data();
this->{self.field_name}_len = value.size();
break;
}}"""
def dump(self, name: str) -> str:
return (
@@ -1220,53 +1214,34 @@ class PointerToStringBufferType(PointerToBufferTypeBase):
def can_use_dump_field(cls) -> bool:
return True
@property
def _starts_null(self) -> bool:
"""A field that is only encoded, and skipped when empty, never has its pointer read
before it is set, so it can default to a null StringRef and the message constructs as
one zero fill. Any encode path that copies unconditionally must check this."""
return not self._needs_decode and not self.force
@property
def public_content(self) -> list[str]:
if self._starts_null:
return [
f"StringRef {self.field_name}{{nullptr, 0}}; // null until set, encode only"
]
return [f"StringRef {self.field_name}{{}};"]
@property
def encode_content(self) -> str:
max_len = self.max_data_length
if max_len is not None and max_len < 128 and self.force:
assert not self._starts_null, (
"unconditional copy of a field that may start null"
)
tag = self.calculate_tag()
if tag < 128:
return _encode_call(
"encode_short_string_force", str(tag), f"this->{self.field_name}"
)
return f"ProtoEncode::encode_short_string_force(pos, {tag}, this->{self.field_name});"
if result := self._encode_bytes_with_precomputed_tag(
f"this->{self.field_name}.c_str()",
f"this->{self.field_name}.size()",
):
assert not self._starts_null, (
"unconditional copy of a field that may start null"
)
return result
return _encode_call(
"encode_string",
str(self.number),
f"this->{self.field_name}",
force=self.force,
if self.force:
return f"ProtoEncode::encode_string(pos, {self.number}, this->{self.field_name}, true);"
return (
f"ProtoEncode::encode_string(pos, {self.number}, this->{self.field_name});"
)
@property
def decode_content(self) -> str:
return self.decode_case(
f"this->{self.field_name} = StringRef(value.data(), value.size());",
)
def decode_length_content(self) -> str | None:
return f"""case {self.number}: {{
this->{self.field_name} = StringRef(reinterpret_cast<const char *>(value.data()), value.size());
break;
}}"""
def dump(self, name: str) -> str:
# Not used since we use dump_field, but required by abstract base class
@@ -1335,13 +1310,14 @@ class PackedBufferTypeInfo(TypeInfo):
]
@property
def decode_content(self) -> str:
def decode_length_content(self) -> str:
"""Store pointer to buffer and calculate count of packed varints."""
return self.decode_case(
f"this->{self.field_name}_data_ = value.data();\n"
f"this->{self.field_name}_length_ = value.size();\n"
f"this->{self.field_name}_count_ = count_packed_varints(value.data(), value.size());",
)
return f"""case {self.number}: {{
this->{self.field_name}_data_ = value.data();
this->{self.field_name}_length_ = value.size();
this->{self.field_name}_count_ = count_packed_varints(value.data(), value.size());
break;
}}"""
@property
def encode_content(self) -> str:
@@ -1426,11 +1402,17 @@ class FixedArrayBytesType(TypeInfo):
]
@property
def decode_content(self) -> str:
return self.decode_case(
f"this->{self.field_name}_len = std::min<size_t>(value.size(), {self.array_size});\n"
f"memcpy(this->{self.field_name}, value.data(), this->{self.field_name}_len);",
)
def decode_length_content(self) -> str:
o = f"case {self.number}: {{\n"
o += " const std::string &data_str = value.as_string();\n"
o += f" this->{self.field_name}_len = data_str.size();\n"
o += f" if (this->{self.field_name}_len > {self.array_size}) {{\n"
o += f" this->{self.field_name}_len = {self.array_size};\n"
o += " }\n"
o += f" memcpy(this->{self.field_name}, data_str.data(), this->{self.field_name}_len);\n"
o += " break;\n"
o += "}"
return o
@property
def encode_content(self) -> str:
@@ -1439,13 +1421,9 @@ class FixedArrayBytesType(TypeInfo):
f"this->{self.field_name}", f"this->{self.field_name}_len", max_len=max_len
):
return result
return _encode_call(
"encode_bytes",
str(self.number),
f"this->{self.field_name}",
f"this->{self.field_name}_len",
force=self.force,
)
if self.force:
return f"ProtoEncode::encode_bytes(pos, {self.number}, this->{self.field_name}, this->{self.field_name}_len, true);"
return f"ProtoEncode::encode_bytes(pos, {self.number}, this->{self.field_name}, this->{self.field_name}_len);"
def dump(self, name: str) -> str:
return f"out.append(format_hex_pretty({name}, {name}_len));"
@@ -1493,7 +1471,7 @@ class UInt32Type(VarintTypeMixin, TypeInfo):
cpp_type = "uint32_t"
_varint_max_bits = 32
default_value = "0"
decode_expr = "value.as_varint()"
decode_varint = "value"
encode_func = "encode_uint32"
wire_type = WireType.VARINT # Uses wire type 0
@@ -1516,21 +1494,13 @@ class UInt32Type(VarintTypeMixin, TypeInfo):
class EnumType(VarintTypeMixin, TypeInfo):
_varint_max_bits = 32
def encode_element(self, number: int, element: str) -> str:
return _encode_call(
self.encode_func,
str(number),
f"static_cast<uint32_t>({element})",
force=True,
)
@property
def cpp_type(self) -> str:
return f"enums::{self._field.type_name[1:]}"
@property
def decode_expr(self) -> str:
return f"static_cast<{self.cpp_type}>(value.as_varint())"
def decode_varint(self) -> str:
return f"static_cast<{self.cpp_type}>(value)"
default_value = ""
wire_type = WireType.VARINT # Uses wire type 0
@@ -1550,9 +1520,9 @@ class EnumType(VarintTypeMixin, TypeInfo):
@property
def encode_content(self) -> str:
value_expr = f"static_cast<uint32_t>(this->{self.field_name})"
return _encode_call(
self.encode_func, str(self.number), value_expr, force=self.force
)
if self.force:
return f"ProtoEncode::{self.encode_func}(pos, {self.number}, {value_expr}, true);"
return f"ProtoEncode::{self.encode_func}(pos, {self.number}, {value_expr});"
def dump(self, name: str) -> str:
return f"out.append_p(proto_enum_to_string<{self.cpp_type}>({name}));"
@@ -1577,7 +1547,7 @@ class EnumType(VarintTypeMixin, TypeInfo):
class SFixed32Type(FixedSizeTypeMixin, TypeInfo):
cpp_type = "int32_t"
default_value = "0"
decode_expr = "value.as_sfixed32()"
decode_32bit = "value.as_sfixed32()"
encode_func = "encode_sfixed32"
wire_type = WireType.FIXED32 # Uses wire type 5
@@ -1603,6 +1573,7 @@ class SFixed32Type(FixedSizeTypeMixin, TypeInfo):
class SFixed64Type(FixedSizeTypeMixin, TypeInfo):
cpp_type = "int64_t"
default_value = "0"
decode_64bit = "value.as_sfixed64()"
encode_func = "encode_sfixed64"
wire_type = WireType.FIXED64 # Uses wire type 1
@@ -1629,7 +1600,7 @@ class SInt32Type(VarintTypeMixin, TypeInfo):
cpp_type = "int32_t"
_varint_max_bits = 32 # zigzag encoding keeps it 32-bit
default_value = "0"
decode_expr = "decode_zigzag32(static_cast<uint32_t>(value.as_varint()))"
decode_varint = "decode_zigzag32(static_cast<uint32_t>(value))"
encode_func = "encode_sint32"
wire_type = WireType.VARINT # Uses wire type 0
@@ -1650,7 +1621,7 @@ class SInt64Type(VarintTypeMixin, TypeInfo):
cpp_type = "int64_t"
_varint_max_bits = 64
default_value = "0"
decode_expr = "decode_zigzag64(value.as_varint())"
decode_varint = "decode_zigzag64(value)"
encode_func = "encode_sint64"
wire_type = WireType.VARINT # Uses wire type 0
@@ -1730,9 +1701,9 @@ def _generate_inline_encode_block(
lines = []
lines.append(f"auto &sub_msg = {element};")
lines.append(_encode_call("write_raw_byte", str(tag)))
lines.append(f"ProtoEncode::write_raw_byte(pos, {tag});")
lines.append("uint8_t *len_pos = pos;")
lines.append(_encode_call("reserve_byte"))
lines.append("ProtoEncode::reserve_byte(pos);")
# Generate inline field encoding for each sub-message field
for field in sub_desc.field:
@@ -1803,11 +1774,18 @@ class FixedArrayRepeatedType(TypeInfo):
def _encode_element(self, element: str) -> str:
"""Helper to generate encode statement for a single element."""
if isinstance(self._ti, MessageType) and _is_inline_encode(self._ti.cpp_type):
return _generate_inline_encode_block(
self.number, self._ti.cpp_type, element
)
return self._ti.encode_element(self.number, element)
if isinstance(self._ti, EnumType):
return f"ProtoEncode::{self._ti.encode_func}(pos, {self.number}, static_cast<uint32_t>({element}), true);"
# Repeated message elements use encode_sub_message (force=true is default)
if isinstance(self._ti, MessageType):
if _is_inline_encode(self._ti.cpp_type):
return _generate_inline_encode_block(
self.number, self._ti.cpp_type, element
)
return f"ProtoEncode::encode_sub_message(pos, buffer, {self.number}, {element});"
return (
f"ProtoEncode::{self._ti.encode_func}(pos, {self.number}, {element}, true);"
)
@property
def cpp_type(self) -> str:
@@ -2101,23 +2079,55 @@ class RepeatedTypeInfo(TypeInfo):
return self._ti.wire_type
@property
def decode_expr(self) -> str | None:
return self._ti.decode_expr
def _decode_store(self, expr: str) -> str:
return f"this->{self.field_name}.push_back({expr});"
@property
def decode_content(self) -> str | None:
def decode_varint_content(self) -> str:
# Pointer fields don't support decoding
if self._use_pointer:
return None
if isinstance(self._ti, MessageType):
return self.decode_case(
f"this->{self.field_name}.emplace_back();\n"
f"value.decode_to_message(this->{self.field_name}.back());"
)
return super().decode_content
content = self._ti.decode_varint
if content is None:
return None
return (
f"case {self.number}: this->{self.field_name}.push_back({content}); break;"
)
@property
def decode_length_content(self) -> str:
# Pointer fields don't support decoding
if self._use_pointer:
return None
content = self._ti.decode_length
if content is None and isinstance(self._ti, MessageType):
# Special handling for non-template message decoding
return f"case {self.number}: this->{self.field_name}.emplace_back(); value.decode_to_message(this->{self.field_name}.back()); break;"
if content is None:
return None
return (
f"case {self.number}: this->{self.field_name}.push_back({content}); break;"
)
@property
def decode_32bit_content(self) -> str:
# Pointer fields don't support decoding
if self._use_pointer:
return None
content = self._ti.decode_32bit
if content is None:
return None
return (
f"case {self.number}: this->{self.field_name}.push_back({content}); break;"
)
@property
def decode_64bit_content(self) -> str:
# Pointer fields don't support decoding
if self._use_pointer:
return None
content = self._ti.decode_64bit
if content is None:
return None
return (
f"case {self.number}: this->{self.field_name}.push_back({content}); break;"
)
@property
def _ti_is_bool(self) -> bool:
@@ -2125,7 +2135,15 @@ class RepeatedTypeInfo(TypeInfo):
return isinstance(self._ti, BoolType)
def _encode_element_call(self, element: str) -> str:
return self._ti.encode_element(self.number, element)
"""Helper to generate encode call for a single element."""
if isinstance(self._ti, EnumType):
return f"ProtoEncode::{self._ti.encode_func}(pos, {self.number}, static_cast<uint32_t>({element}), true);"
# Repeated message elements use encode_sub_message (force=true is default)
if isinstance(self._ti, MessageType):
return f"ProtoEncode::encode_sub_message(pos, buffer, {self.number}, {element});"
return (
f"ProtoEncode::{self._ti.encode_func}(pos, {self.number}, {element}, true);"
)
@property
def encode_content(self) -> str:
@@ -2134,7 +2152,7 @@ class RepeatedTypeInfo(TypeInfo):
# Special handling for const char* elements (when container_no_template contains "const char")
if "const char" in self._container_no_template:
o = f"for (const char *it : *this->{self.field_name}) {{\n"
o += f" {_encode_call(self._ti.encode_func, str(self.number), 'it', 'strlen(it)', force=True)}\n"
o += f" ProtoEncode::{self._ti.encode_func}(pos, {self.number}, it, strlen(it), true);\n"
else:
o = f"for (const auto &it : *this->{self.field_name}) {{\n"
o += f" {self._encode_element_call('it')}\n"
@@ -2520,7 +2538,10 @@ def build_message_type(
) -> tuple[str, str, str]:
public_content: list[str] = []
protected_content: list[str] = []
decode: list[str] = []
decode_varint: list[str] = []
decode_length: list[str] = []
decode_32bit: list[str] = []
decode_64bit: list[str] = []
encode: list[str] = []
dump: list[str] = []
size_calc: list[str] = []
@@ -2649,8 +2670,22 @@ def build_message_type(
if field.options.HasExtension(pb.field_ifdef):
field_ifdef = field.options.Extensions[pb.field_ifdef]
if case := ti.decode_content:
decode.extend(wrap_with_ifdef(case, field_ifdef))
if ti.decode_varint_content:
decode_varint.extend(
wrap_with_ifdef(ti.decode_varint_content, field_ifdef)
)
if ti.decode_length_content:
decode_length.extend(
wrap_with_ifdef(ti.decode_length_content, field_ifdef)
)
if ti.decode_32bit_content:
decode_32bit.extend(
wrap_with_ifdef(ti.decode_32bit_content, field_ifdef)
)
if ti.decode_64bit_content:
decode_64bit.extend(
wrap_with_ifdef(ti.decode_64bit_content, field_ifdef)
)
if ti.dump_content:
# Check for field_ifdef option for dump as well
field_ifdef = None
@@ -2660,15 +2695,49 @@ def build_message_type(
dump.extend(wrap_with_ifdef(ti.dump_content, field_ifdef))
cpp = ""
if decode:
o = f"void {desc.name}::decode_field(uint32_t tag, const uint8_t *data, proto_varint_value_t scalar) {{\n"
o += " const ProtoFieldValue value(data, scalar);\n"
o += " switch (tag) {\n"
o += indent("\n".join(decode), " ") + "\n"
if decode_varint:
o = f"bool {desc.name}::decode_varint(uint32_t field_id, proto_varint_value_t value) {{\n"
o += " switch (field_id) {\n"
o += indent("\n".join(decode_varint), " ") + "\n"
o += " default: return false;\n"
o += " }\n"
o += " return true;\n"
o += "}\n"
cpp += o
prot = "void decode_field(uint32_t tag, const uint8_t *data, proto_varint_value_t scalar) override;"
prot = "bool decode_varint(uint32_t field_id, proto_varint_value_t value) override;"
protected_content.insert(0, prot)
if decode_length:
o = f"bool {desc.name}::decode_length(uint32_t field_id, ProtoLengthDelimited value) {{\n"
o += " switch (field_id) {\n"
o += indent("\n".join(decode_length), " ") + "\n"
o += " default: return false;\n"
o += " }\n"
o += " return true;\n"
o += "}\n"
cpp += o
prot = "bool decode_length(uint32_t field_id, ProtoLengthDelimited value) override;"
protected_content.insert(0, prot)
if decode_32bit:
o = f"bool {desc.name}::decode_32bit(uint32_t field_id, Proto32Bit value) {{\n"
o += " switch (field_id) {\n"
o += indent("\n".join(decode_32bit), " ") + "\n"
o += " default: return false;\n"
o += " }\n"
o += " return true;\n"
o += "}\n"
cpp += o
prot = "bool decode_32bit(uint32_t field_id, Proto32Bit value) override;"
protected_content.insert(0, prot)
if decode_64bit:
o = f"bool {desc.name}::decode_64bit(uint32_t field_id, Proto64Bit value) {{\n"
o += " switch (field_id) {\n"
o += indent("\n".join(decode_64bit), " ") + "\n"
o += " default: return false;\n"
o += " }\n"
o += " return true;\n"
o += "}\n"
cpp += o
prot = "bool decode_64bit(uint32_t field_id, Proto64Bit value) override;"
protected_content.insert(0, prot)
# Generate custom decode() override for messages with FixedVector fields
@@ -2715,36 +2784,28 @@ def build_message_type(
)
for line in encode
]
o = f"{speed_attr}uint8_t *{desc.name}::encode_msg(const void *self, ProtoWriteBuffer &buffer PROTO_ENCODE_DEBUG_PARAM) {{\n"
o += f" const auto &msg = *static_cast<const {desc.name} *>(self);\n"
o = f"{speed_attr}uint8_t *{desc.name}::encode(ProtoWriteBuffer &buffer PROTO_ENCODE_DEBUG_PARAM) const {{\n"
o += " uint8_t *__restrict__ pos = buffer.get_pos();\n"
o += indent("\n".join(encode_debug)).replace("this->", "msg.") + "\n"
o += indent("\n".join(encode_debug)) + "\n"
o += " return pos;\n"
o += "}\n"
cpp += o
public_content.append(
"static uint8_t *encode_msg(const void *self, ProtoWriteBuffer &buffer PROTO_ENCODE_DEBUG_PARAM);"
)
public_content.append(
"uint8_t *encode(ProtoWriteBuffer &buffer PROTO_ENCODE_DEBUG_PARAM) const {\n"
" return encode_msg(this, buffer PROTO_ENCODE_DEBUG_ARG);\n"
"}"
prot = (
"uint8_t *encode(ProtoWriteBuffer &buffer PROTO_ENCODE_DEBUG_PARAM) const;"
)
public_content.append(prot)
# If no fields to encode or message doesn't need encoding, the default implementation in ProtoMessage will be used
# Add calculate_size method only if this message needs encoding and has fields
if needs_encode and size_calc and not is_inline_only:
o = f"{speed_attr}uint32_t {desc.name}::calc_size_msg(const void *self) {{\n"
o += f" const auto &msg = *static_cast<const {desc.name} *>(self);\n"
o = f"{speed_attr}uint32_t {desc.name}::calculate_size() const {{\n"
o += " uint32_t size = 0;\n"
o += indent("\n".join(size_calc)).replace("this->", "msg.") + "\n"
o += indent("\n".join(size_calc)) + "\n"
o += " return size;\n"
o += "}\n"
cpp += o
public_content.append("static uint32_t calc_size_msg(const void *self);")
public_content.append(
"uint32_t calculate_size() const { return calc_size_msg(this); }"
)
prot = "uint32_t calculate_size() const;"
public_content.append(prot)
# If no fields to calculate size for or message doesn't need encoding, the default implementation in ProtoMessage will be used
# dump_to method declaration in header
+2
View File
@@ -823,6 +823,8 @@ def lint_relative_py_import(fname: Path, line, col, content):
# neither can live in a C++ namespace.
"esphome/components/esp32_hosted/esp_now_hosted.cpp",
"esphome/components/esp32_hosted/esp_now_hosted_rpc.h",
# C header shared with the vendored decoder
"esphome/components/esphome/ota/ota_esphome_inflate.h",
],
)
def lint_namespace(fname: Path, content: str) -> str | None:
+25 -1
View File
@@ -14,7 +14,31 @@ top=$(git rev-parse --show-toplevel 2>/dev/null) || exit 0
[ -x "$top/venv/bin/python" ] && exit 0
[ -x "$top/script/setup" ] || exit 0
# Every worktree shares the hooks directory of the checkout it was created
# from, and the script/setup run below is the one from whichever branch was just
# checked out. Older branches install their own pre-commit hook without checking
# for a worktree: that moves the shared hook aside as pre-commit.legacy and
# replaces it with one tied to this worktree's virtual environment, so commits
# break in every checkout. To rule that out, the hooks directory is copied
# before script/setup runs and put back exactly as it was afterwards, including
# removing any file script/setup added.
hooks=$(git rev-parse --path-format=absolute --git-path hooks 2>/dev/null) || exit 0
snap=$(mktemp -d "$hooks/.post-checkout.XXXXXX") || exit 0
cp -p "$hooks"/* "$snap"/ 2>/dev/null
# Clear VIRTUAL_ENV so a checkout made from a shell with an environment already
# activated still gets its own, rather than having the active one repointed at
# this working tree.
exec env -u VIRTUAL_ENV "$top/script/setup"
env -u VIRTUAL_ENV "$top/script/setup"
status=$?
for f in "$hooks"/*; do
[ -e "$snap/${f##*/}" ] || rm -f "$f"
done
# Files are moved rather than copied so a hook that is still running, such as
# this one, is swapped out atomically instead of being rewritten in place.
for f in "$snap"/*; do
cmp -s "$f" "$hooks/${f##*/}" 2>/dev/null || mv -f "$f" "$hooks/${f##*/}"
done
rm -rf "$snap"
exit $status
+164
View File
@@ -0,0 +1,164 @@
#!/usr/bin/env python3
"""Keep pre-commit hook revs in sync with the requirements files.
Dependabot only bumps the ``package==version`` pins in ``requirements*.txt``.
Some of those tools are pinned a second time as hook ``rev`` values in
``.pre-commit-config.yaml``. This script treats the requirements files as
the source of truth and rewrites the revs to match, editing the config
through yamlrocks so comments and layout survive.
Run without arguments to apply the changes in place, or with ``--check`` to
only report drift (exit status 1 when anything is out of sync).
"""
from __future__ import annotations
import argparse
from dataclasses import dataclass
from pathlib import Path
import re
import sys
from typing import Any
import yamlrocks
REPO_ROOT = Path(__file__).resolve().parent.parent
PRECOMMIT_CONFIG = ".pre-commit-config.yaml"
class SyncError(Exception):
"""A pin could not be located in a requirements file or the config."""
@dataclass(frozen=True)
class SyncTarget:
"""A requirements pin and the pre-commit repo whose rev mirrors it."""
package: str
requirements_file: str
repo: str
SYNC_TARGETS: tuple[SyncTarget, ...] = (
SyncTarget(
"ruff", "requirements_test.txt", "https://github.com/astral-sh/ruff-pre-commit"
),
SyncTarget("flake8", "requirements_test.txt", "https://github.com/PyCQA/flake8"),
SyncTarget(
"pyupgrade", "requirements_test.txt", "https://github.com/asottile/pyupgrade"
),
SyncTarget(
"clang-format",
"requirements_dev.txt",
"https://github.com/pre-commit/mirrors-clang-format",
),
SyncTarget(
"yamllint",
"requirements_dev.txt",
"https://github.com/adrienverge/yamllint.git",
),
)
def read_requirement_version(requirements: str, package: str) -> str | None:
"""Return the ``==`` pin for ``package`` or None when it is not pinned."""
pattern = re.compile(
rf"^{re.escape(package)}==(?P<version>[^\s#]+)",
re.MULTILINE | re.IGNORECASE,
)
match = pattern.search(requirements)
return match.group("version") if match else None
def find_repo_entry(doc: Any, repo: str) -> Any:
"""Return the single ``- repo:`` block for ``repo`` in a pre-commit doc."""
try:
entries = [entry for entry in doc["repos"] if entry["repo"] == repo]
except KeyError as err:
raise SyncError(f"malformed pre-commit config, missing key {err}") from None
if len(entries) != 1:
raise SyncError(
f"expected exactly one block for repo {repo}, found {len(entries)}"
)
return entries[0]
def current_rev(entry: Any, repo: str) -> tuple[str, str]:
"""Split the block's rev into its tag prefix (``v`` or empty) and version."""
if "rev" not in entry:
raise SyncError(f"repo {repo} has no rev")
rev = entry["rev"]
if not isinstance(rev, str):
# A rev such as ``1.0`` parses as a number and cannot be compared or
# rewritten safely; quote it in the config instead.
raise SyncError(f"rev of repo {repo} is not a string: {rev!r}")
prefix = "v" if rev.startswith("v") else ""
return prefix, rev.removeprefix("v")
def sync(root: Path, *, write: bool) -> list[str]:
"""Bring every hook rev in line with its requirements pin.
Returns one description per rev that was (or, when ``write`` is False,
would be) changed. Raises SyncError when a pin cannot be found, which
means SYNC_TARGETS has gone stale and needs updating by hand.
"""
config_path = root / PRECOMMIT_CONFIG
doc = yamlrocks.loads(config_path.read_bytes(), option=yamlrocks.OPT_ROUND_TRIP)
requirements: dict[str, str] = {}
changes: list[str] = []
for target in SYNC_TARGETS:
if target.requirements_file not in requirements:
requirements[target.requirements_file] = (
root / target.requirements_file
).read_text()
version = read_requirement_version(
requirements[target.requirements_file], target.package
)
if version is None:
raise SyncError(
f"{target.requirements_file}: no '{target.package}==' pin found"
)
entry = find_repo_entry(doc, target.repo)
prefix, current = current_rev(entry, target.repo)
if current == version:
continue
changes.append(f"{target.package}: {current} -> {version}")
entry["rev"] = f"{prefix}{version}"
if changes and write:
config_path.write_bytes(doc.to_yaml())
return changes
def main(argv: list[str] | None = None) -> int:
parser = argparse.ArgumentParser(description=__doc__.splitlines()[0])
parser.add_argument(
"--check",
action="store_true",
help="report drift without modifying any file; exit 1 if out of sync",
)
parser.add_argument(
"--root",
type=Path,
default=REPO_ROOT,
help="repository checkout to operate on (default: this checkout)",
)
args = parser.parse_args(argv)
try:
changes = sync(args.root, write=not args.check)
except SyncError as err:
print(f"error: {err}", file=sys.stderr)
return 1
for change in changes:
print(change)
if args.check and changes:
return 1
return 0
if __name__ == "__main__": # pragma: no cover
sys.exit(main())
@@ -249,7 +249,7 @@ static APIBuffer build_infrared_rf_transmit_wire() {
std::memcpy(bytes + len, packed, packed_len);
len += packed_len;
// field 6: modulation = 1 (non-zero so it's actually emitted and exercises
// decode_field for this field, matching the documented layout above).
// decode_varint for this field, matching the documented layout above).
put_byte(0x30);
put_varint(1);
@@ -0,0 +1,32 @@
esphome:
name: test-keyboard-no-label
esp32:
board: esp32dev
framework:
type: esp-idf
spi:
- id: spi_bus
clk_pin: GPIO18
mosi_pin: GPIO23
display:
- platform: mipi_spi
spi_id: spi_bus
model: st7789v
id: tft_display
dimensions:
width: 240
height: 320
cs_pin: GPIO22
dc_pin: GPIO21
auto_clear_enabled: false
invert_colors: false
update_interval: never
lvgl:
displays: tft_display
widgets:
- keyboard:
id: keyboard_widget
@@ -0,0 +1,34 @@
esphome:
name: test-qrcode-no-label
esp32:
board: esp32dev
framework:
type: esp-idf
spi:
- id: spi_bus
clk_pin: GPIO18
mosi_pin: GPIO23
display:
- platform: mipi_spi
spi_id: spi_bus
model: st7789v
id: tft_display
dimensions:
width: 240
height: 320
cs_pin: GPIO22
dc_pin: GPIO21
auto_clear_enabled: false
invert_colors: false
update_interval: never
lvgl:
displays: tft_display
widgets:
- qrcode:
id: qr_widget
size: 100
text: "esphome.io"
@@ -0,0 +1,35 @@
esphome:
name: test-tabview-no-label
esp32:
board: esp32dev
framework:
type: esp-idf
spi:
- id: spi_bus
clk_pin: GPIO18
mosi_pin: GPIO23
display:
- platform: mipi_spi
spi_id: spi_bus
model: st7789v
id: tft_display
dimensions:
width: 240
height: 320
cs_pin: GPIO22
dc_pin: GPIO21
auto_clear_enabled: false
invert_colors: false
update_interval: never
lvgl:
displays: tft_display
widgets:
- tabview:
id: tabview_widget
tabs:
- name: "Tab 1"
id: tab_1
@@ -0,0 +1,32 @@
"""Widgets whose LVGL C implementation creates or references labels
internally (tab titles, key legends, the QR canvas fallback) must declare
the label dependency in ``get_uses()``. Otherwise a config that contains
no ``label`` widget of its own compiles LVGL without ``LV_USE_LABEL`` and
fails at C compile time with undefined ``lv_label_*`` symbols.
"""
from __future__ import annotations
from collections.abc import Callable
from pathlib import Path
import pytest
from esphome.components.lvgl import defines as df
@pytest.mark.parametrize(
"yaml_file",
[
"qrcode_no_label.yaml",
"keyboard_no_label.yaml",
"tabview_no_label.yaml",
],
)
def test_label_less_config_enables_lv_use_label(
generate_main: Callable[[str | Path], str],
component_config_path: Callable[[str], Path],
yaml_file: str,
) -> None:
generate_main(component_config_path(yaml_file))
assert "LV_USE_LABEL" in df.get_defines()
@@ -59,7 +59,7 @@ static void verify_mac(uint64_t mac, size_t expected_bytes) {
#ifdef ESPHOME_DEBUG_API
uint8_t *proto_debug_end_ = api_buf.data() + api_buf.size();
#endif
pos = ProtoEncode::encode_varint_raw_48bit(pos PROTO_ENCODE_DEBUG_ARG, mac);
ProtoEncode::encode_varint_raw_48bit(pos PROTO_ENCODE_DEBUG_ARG, mac);
size_t new_len = pos - api_buf.data();
EXPECT_EQ(new_len, expected_bytes) << "mac=0x" << std::hex << mac << std::dec;
+5
View File
@@ -0,0 +1,5 @@
from tests.testing_helpers import ComponentManifestOverride
def override_manifest(manifest: ComponentManifestOverride) -> None:
manifest.dependencies = manifest.dependencies + ["sensor", "spi"]
@@ -0,0 +1,62 @@
#include <gtest/gtest.h>
#include "esphome/components/atm90e32/atm90e32.h"
namespace esphome::atm90e32::testing {
TEST(ATM90E32OffsetRegisterVerification, AcceptsExactSignedReadback) {
EXPECT_TRUE(offset_register_value_matches(0x007B, 123));
EXPECT_TRUE(offset_register_value_matches(0xFF85, -123));
}
TEST(ATM90E32OffsetRegisterVerification, RejectsMismatchedReadback) {
EXPECT_FALSE(offset_register_value_matches(0x007C, 123));
EXPECT_FALSE(offset_register_value_matches(0xFF84, -123));
}
TEST(ATM90E32OffsetRestoreState, ReportsVerifiedStoredValuesAsRestored) {
const auto state = resolve_offset_restore_state(true, true, false);
EXPECT_TRUE(state.restored);
EXPECT_TRUE(state.values_verified);
}
TEST(ATM90E32OffsetRestoreState, ReportsVerifiedConfigFallbackAsNotRestored) {
const auto state = resolve_offset_restore_state(true, false, true);
EXPECT_FALSE(state.restored);
EXPECT_TRUE(state.values_verified);
}
TEST(ATM90E32OffsetRestoreState, ReportsFailedConfigFallbackAsUnverified) {
const auto state = resolve_offset_restore_state(true, false, false);
EXPECT_FALSE(state.restored);
EXPECT_FALSE(state.values_verified);
}
TEST(ATM90E32OffsetRestoreState, ReportsConfigWithoutStoredValuesAsNotRestored) {
const auto state = resolve_offset_restore_state(false, true, false);
EXPECT_FALSE(state.restored);
EXPECT_TRUE(state.values_verified);
}
TEST(ATM90E32OffsetPersistence, RollsBackStoredValuesOrZeroSentinel) {
const OffsetCalibration previous[3]{{1, -1}, {2, -2}, {3, -3}};
OffsetCalibration rollback[3]{};
prepare_offset_rollback(previous, true, rollback);
for (uint8_t phase = 0; phase < 3; phase++) {
EXPECT_EQ(rollback[phase].first_offset, previous[phase].first_offset);
EXPECT_EQ(rollback[phase].second_offset, previous[phase].second_offset);
}
prepare_offset_rollback(previous, false, rollback);
for (const auto &phase : rollback) {
EXPECT_EQ(phase.first_offset, 0);
EXPECT_EQ(phase.second_offset, 0);
}
}
} // namespace esphome::atm90e32::testing
-43
View File
@@ -59,47 +59,4 @@ TEST(StringRefStartsWith, RefOverloadComparesOnlyTheViewedLength) {
EXPECT_TRUE(ref.starts_with(prefix));
}
// The generated api messages start their encode only string fields as a null pointer with zero
// length; every member must treat that exactly like the default constructed empty string.
TEST(StringRefNullEmpty, BehavesAsEmptyString) {
const StringRef null_empty{nullptr, 0};
const StringRef empty;
EXPECT_TRUE(null_empty.empty());
EXPECT_EQ(null_empty.size(), 0u);
EXPECT_EQ(null_empty.c_str(), nullptr);
EXPECT_TRUE(null_empty == empty);
EXPECT_TRUE(null_empty == "");
EXPECT_TRUE(null_empty == std::string());
EXPECT_EQ(null_empty.compare(empty), 0);
EXPECT_EQ(null_empty.compare(""), 0);
EXPECT_LT(null_empty.compare("a"), 0);
EXPECT_TRUE(null_empty.starts_with(""));
EXPECT_FALSE(null_empty.starts_with("a"));
EXPECT_EQ(null_empty.str(), std::string());
EXPECT_EQ(null_empty.substr(0), std::string());
EXPECT_EQ(null_empty.find('a'), std::string::npos);
EXPECT_EQ(null_empty.find("a"), std::string::npos);
char buf[4] = "xyz";
EXPECT_EQ(null_empty.copy(buf, sizeof(buf)), 0u);
EXPECT_EQ(null_empty.begin(), null_empty.end());
}
TEST(StringRefNullEmpty, ComparesAgainstText) {
const StringRef null_empty{nullptr, 0};
const StringRef text("abc", 3);
EXPECT_FALSE(null_empty == text);
EXPECT_FALSE(text == null_empty);
EXPECT_LT(null_empty.compare(text), 0);
EXPECT_GT(text.compare(null_empty), 0);
EXPECT_TRUE(text.starts_with(null_empty));
}
TEST(StringRefNullEmpty, TwoNullViewsAreEqual) {
const StringRef a{nullptr, 0};
const StringRef b{nullptr, 0};
EXPECT_TRUE(a == b);
EXPECT_EQ(a.compare(b), 0);
EXPECT_TRUE(a.starts_with(b));
}
} // namespace esphome::core::testing
+12
View File
@@ -0,0 +1,12 @@
from esphome.loader import FileResource
from tests.testing_helpers import ComponentManifestOverride
def override_manifest(manifest: ComponentManifestOverride) -> None:
# to_code emits the component count the application needs
manifest.enable_codegen()
# Only the decoder is under test; its ota platform is not in this build
manifest.resources = manifest.resources + [
FileResource("esphome.components.esphome", "ota/ota_esphome_inflate.c"),
FileResource("esphome.components.esphome", "ota/ota_esphome_inflate.h"),
]
@@ -0,0 +1,323 @@
#include <gtest/gtest.h>
#include <cstdint>
#include <cstring>
#include <vector>
#include "esphome/components/esphome/ota/ota_esphome_inflate.h"
namespace esphome::testing {
// build_plain() compressed with the CLI's window (espota2.DEFLATE_WINDOW_BITS):
// DEFLATED = zlib.compress(plain, 9, wbits=-12)
// STORED = zlib.compress(plain[:300], 0, wbits=-12)
static const uint8_t DEFLATED[] = {
0xed, 0xc8, 0xf7, 0x3f, 0xd4, 0x0f, 0x03, 0x00, 0x70, 0x67, 0xaf, 0x4b, 0x67, 0x66, 0x9f, 0x90, 0x91, 0x11, 0xc2,
0x11, 0x91, 0xb8, 0xb3, 0xf7, 0x3a, 0xd9, 0x5f, 0x4e, 0x99, 0x67, 0x1e, 0xce, 0x8a, 0xac, 0xec, 0x59, 0xb8, 0xc2,
0x95, 0x5d, 0x56, 0x42, 0x67, 0x73, 0x46, 0xf6, 0xca, 0xce, 0xc8, 0xc8, 0xc8, 0x91, 0x8a, 0x7c, 0x2f, 0x7a, 0xfe,
0x86, 0xe7, 0x87, 0xe7, 0x87, 0xe7, 0xf5, 0xfa, 0xbc, 0x7f, 0x7c, 0xbb, 0x07, 0xa2, 0x1f, 0xfa, 0xf9, 0xb8, 0x43,
0xfd, 0x82, 0x5c, 0xa0, 0x6e, 0xee, 0x28, 0x6f, 0x97, 0x20, 0x77, 0xa8, 0x3b, 0x70, 0xc0, 0x01, 0x07, 0x1c, 0x70,
0xc0, 0x01, 0x07, 0x1c, 0x70, 0xc0, 0x01, 0x07, 0x1c, 0x70, 0xc0, 0x01, 0x07, 0x1c, 0x70, 0xc0, 0x01, 0x07, 0x1c,
0x70, 0xc0, 0x01, 0xf7, 0x5f, 0xdd, 0x40, 0xd4, 0x63, 0x2f, 0x03, 0xf2, 0x17, 0xb2, 0xe5, 0x69, 0xc7, 0x5a, 0x04,
0xdf, 0x46, 0x22, 0xa8, 0x4b, 0x6e, 0xd5, 0x3a, 0x80, 0x05, 0xe1, 0x81, 0x4a, 0x44, 0x56, 0x27, 0xa9, 0x21, 0xf7,
0xad, 0xd9, 0xb0, 0xd3, 0xf1, 0xa5, 0x0b, 0x6a, 0x96, 0x56, 0xb2, 0xca, 0xb5, 0xee, 0x0f, 0x96, 0x28, 0xc3, 0x9e,
0x8f, 0x6e, 0xf2, 0x84, 0xa4, 0x3b, 0x2d, 0x16, 0x64, 0x08, 0x6a, 0x28, 0x91, 0xee, 0x87, 0x1a, 0x81, 0xff, 0xed,
0x2c, 0x5f, 0xda, 0x4a, 0x48, 0x5f, 0x91, 0xf0, 0x31, 0xfe, 0x6b, 0xbd, 0x81, 0x86, 0x92, 0x33, 0x1a, 0x6c, 0x69,
0x32, 0xfb, 0x19, 0x56, 0x2c, 0xc6, 0xaa, 0xef, 0xe8, 0x16, 0x98, 0xcf, 0x98, 0xbf, 0xa0, 0x2d, 0xde, 0x7f, 0xdf,
0x4b, 0xcb, 0xf6, 0x5c, 0xaf, 0x11, 0x24, 0xf0, 0x46, 0x3e, 0x49, 0x0e, 0x67, 0x0e, 0xcf, 0xf3, 0x57, 0xca, 0xb0,
0x39, 0x55, 0xe1, 0xe7, 0xfc, 0x37, 0x29, 0xe8, 0xd7, 0xf3, 0x08, 0x2e, 0xfb, 0x7b, 0x6d, 0x3e, 0xfe, 0xe9, 0x2c,
0x68, 0xe4, 0x20, 0x88, 0x57, 0x56, 0x41, 0x3d, 0xab, 0x9b, 0xbf, 0x0c, 0x0c, 0xae, 0x51, 0x48, 0x8b, 0x72, 0xcc,
0xb8, 0xbb, 0xf3, 0x30, 0xa8, 0x5c, 0xb5, 0xa1, 0x2f, 0x07, 0x52, 0xe9, 0x36, 0xb8, 0x3c, 0xbc, 0xee, 0xbc, 0xf1,
0xa3, 0x8b, 0x81, 0xc2, 0x03, 0xbf, 0x29, 0x5a, 0x22, 0x24, 0x97, 0xf8, 0xc9, 0xb5, 0xbf, 0xd2, 0x24, 0x4a, 0x86,
0xc1, 0x2b, 0xb7, 0xb8, 0xde, 0xa7, 0xea, 0xa5, 0x1d, 0x13, 0x1c, 0x1d, 0xd3, 0x3c, 0x81, 0x60, 0x2e, 0x2f, 0x93,
0x5c, 0x78, 0x43, 0x2e, 0x39, 0x68, 0x09, 0x13, 0x09, 0x10, 0xce, 0xd6, 0x8d, 0xe9, 0x2f, 0xaf, 0x88, 0x6f, 0x99,
0x4f, 0xcd, 0xdc, 0xaa, 0xf9, 0x47, 0xdb, 0x1c, 0xb5, 0x89, 0x53, 0x10, 0x3d, 0x77, 0xac, 0x26, 0x04, 0x3a, 0x3b,
0x18, 0xf8, 0x47, 0x75, 0x56, 0xa5, 0xda, 0x70, 0xfb, 0xf7, 0x0d, 0x3b, 0x6e, 0x4b, 0x2a, 0xbc, 0x49, 0x32, 0x43,
0x95, 0x62, 0x83, 0x3d, 0xdc, 0x0a, 0x1f, 0x1d, 0xf9, 0x59, 0x6b, 0x95, 0xf0, 0x9b, 0xf5, 0x53, 0x9e, 0xb5, 0x65,
0xeb, 0x74, 0xfa, 0x81, 0x9b, 0x61, 0xa3, 0x57, 0x2f, 0xda, 0x2c, 0xcd, 0xf8, 0xb0, 0x74, 0xb9, 0x62, 0x39, 0x91,
0xd9, 0x7d, 0xb3, 0x03, 0x65, 0x2e, 0x66, 0x20, 0x18, 0xac, 0xa2, 0xeb, 0x3b, 0x35, 0x98, 0xa3, 0x28, 0x46, 0x30,
0xee, 0xd3, 0xeb, 0x47, 0x49, 0x11, 0xc5, 0xcd, 0xa0, 0xa5, 0x1c, 0x2e, 0x9d, 0x14, 0xd6, 0x46, 0x4a, 0x05, 0x7b,
0xd3, 0xb9, 0x0d, 0xeb, 0xd7, 0x6f, 0xb5, 0xf4, 0xed, 0x3f, 0x27, 0xb8, 0xec, 0x51, 0xb1, 0x6e, 0xb0, 0x14, 0xed,
0xdf, 0x90, 0x72, 0x59, 0x71, 0xd5, 0xf5, 0xf2, 0x61, 0x5f, 0xa7, 0x8a, 0xd7, 0x0f, 0x80, 0x2f, 0xe5, 0x0f, 0x45,
0xf2, 0x4d, 0xd1, 0xdc, 0xdd, 0xce, 0x46, 0xdf, 0x77, 0xf2, 0xa6, 0xa2, 0x79, 0x77, 0xf0, 0x0e, 0xaa, 0x68, 0x14,
0x85, 0x32, 0x05, 0x29, 0x75, 0x2b, 0x6c, 0xb0, 0x7c, 0x84, 0xc9, 0xec, 0x49, 0x70, 0x9b, 0x38, 0x36, 0x4c, 0xe9,
0xa5, 0xdc, 0xb1, 0xb8, 0x28, 0xd6, 0x20, 0x89, 0x8a, 0x2a, 0x62, 0xc1, 0x90, 0x3a, 0x43, 0x48, 0xaa, 0xfc, 0xec,
0x52, 0xf4, 0x02, 0xa7, 0xcd, 0x46, 0xf9, 0x78, 0x64, 0x4f, 0xad, 0x6b, 0x17, 0xdb, 0x56, 0xa2, 0xa1, 0x6a, 0xcf,
0x3b, 0x66, 0x64, 0x01, 0xc2, 0xd6, 0xae, 0x23, 0x34, 0x82, 0x60, 0x0a, 0x3a, 0xe4, 0xdd, 0x7f, 0xaa, 0x97, 0x44,
0x9a, 0x63, 0x8f, 0xaf, 0xa9, 0x97, 0x5a, 0x55, 0xcc, 0x81, 0x48, 0x83, 0xf8, 0xe6, 0xc5, 0xef, 0xdf, 0xfa, 0x5a,
0x4f, 0x7f, 0x18, 0x56, 0xc0, 0x66, 0x36, 0xad, 0x8a, 0x79, 0xab, 0xde, 0xf4, 0x7b, 0x70, 0x98, 0xea, 0xfa, 0xf4,
0xc7, 0x01, 0x31, 0x16, 0xea, 0xf1, 0x70, 0x8d, 0xee, 0x87, 0x52, 0x13, 0x01, 0x9e, 0x0c, 0xbd, 0x5a, 0x14, 0x01,
0x8e, 0xf7, 0x6e, 0xff, 0xce, 0x7f, 0xa4, 0xd1, 0xa1, 0x6a, 0x9b, 0x95, 0xb2, 0x31, 0x8a, 0x6f, 0xc8, 0xfe, 0x8c,
0x29, 0x55, 0xbc, 0xfc, 0x61, 0xd0, 0xde, 0xb0, 0xa9, 0x0c, 0x01, 0x0f, 0xba, 0x77, 0x7e, 0x77, 0xd9, 0x76, 0xa4,
0xfd, 0xab, 0x38, 0x18, 0x92, 0xec, 0xf0, 0xd3, 0x57, 0x7f, 0xf4, 0xbd, 0x65, 0xd4, 0x77, 0x8e, 0xa1, 0x92, 0x82,
0x0c, 0x7b, 0x34, 0xd3, 0x11, 0xfb, 0xc0, 0x36, 0x23, 0x8e, 0xbb, 0x89, 0xdf, 0x70, 0xdc, 0x9a, 0x76, 0x45, 0x0b,
0x22, 0xfa, 0x35, 0xdf, 0x8f, 0x45, 0x48, 0x7d, 0xed, 0xdc, 0x06, 0x01, 0x5e, 0xbb, 0xe9, 0xf9, 0x07, 0x93, 0xf6,
0x69, 0x6f, 0xf1, 0xfc, 0xfd, 0xfa, 0x41, 0xc0, 0x13, 0x9e, 0x74, 0x2d, 0x76, 0xfe, 0xa7, 0xbe, 0x4e, 0xd9, 0xaa,
0x64, 0xa6, 0xed, 0xd3, 0xad, 0xee, 0x62, 0x9d, 0x39, 0xc9, 0xb8, 0xae, 0x86, 0x31, 0x4f, 0x62, 0x57, 0xea, 0xea,
0x5a, 0xe3, 0x59, 0xd8, 0x99, 0xb3, 0xcd, 0x9f, 0x3b, 0xea, 0x58, 0x99, 0x11, 0xdc, 0x3d, 0xac, 0x58, 0xd9, 0xa6,
0xae, 0x2d, 0x07, 0x1d, 0xd7, 0xfa, 0x87, 0x78, 0xa7, 0x7f, 0x2a, 0x4f, 0x25, 0x58, 0xef, 0x53, 0x78, 0x2e, 0x93,
0xdc, 0x44, 0xcc, 0x53, 0x88, 0x77, 0x1c, 0xda, 0x14, 0xaf, 0xe1, 0x67, 0x92, 0xff, 0x36, 0x96, 0x20, 0x6f, 0x9d,
0x2c, 0x7f, 0xea, 0x31, 0xf2, 0x34, 0x50, 0xc2, 0x39, 0x84, 0xee, 0x4c, 0xbe, 0xca, 0x06, 0x6f, 0x67, 0x42, 0xea,
0x13, 0x58, 0xee, 0xdd, 0x8e, 0x29, 0x4f, 0xee, 0xd8, 0x93, 0x0d, 0x45, 0x80, 0x4d, 0xf3, 0x12, 0x79, 0xbb, 0x36,
0xa3, 0x73, 0x95, 0x95, 0xb6, 0xfc, 0x54, 0x60, 0xb2, 0xcc, 0x71, 0xaa, 0xf1, 0x6b, 0x66, 0xed, 0xba, 0x8b, 0xd6,
0x6d, 0x61, 0x79, 0x61, 0x1d, 0xb3, 0xba, 0xa6, 0x2f, 0xaa, 0xdc, 0x1d, 0xb8, 0x22, 0xd8, 0x98, 0x58, 0xed, 0x4d,
0x3c, 0xea, 0xa9, 0x37, 0x5e, 0x5e, 0x7b, 0x47, 0xa1, 0x7a, 0x39, 0x42, 0xe4, 0x3b, 0xbb, 0x69, 0x0a, 0x8b, 0x32,
0x6e, 0x63, 0xeb, 0x87, 0xf6, 0x5d, 0xaa, 0xbf, 0xbe, 0xc5, 0xb2, 0x85, 0x60, 0xdc, 0x32, 0x07, 0x85, 0x73, 0x3d,
0x96, 0x8b, 0x89, 0x71, 0x52, 0xb4, 0x93, 0xe6, 0x18, 0xad, 0xbf, 0xce, 0x21, 0x1d, 0x33, 0xb5, 0xb3, 0x35, 0x6a,
0x5b, 0xe7, 0x47, 0x13, 0x19, 0x8f, 0x53, 0xf4, 0x0c, 0x2a, 0x39, 0x16, 0x37, 0x39, 0x3b, 0x5f, 0x81, 0x51, 0xbc,
0x23, 0x92, 0x2c, 0x8d, 0xbf, 0x2f, 0xee, 0xbf, 0xed, 0x9d, 0x3f, 0xe0, 0x16, 0x21, 0x5a, 0x57, 0xa6, 0x8c, 0x58,
0x7a, 0xd5, 0xa1, 0x6d, 0xed, 0xe8, 0x90, 0x97, 0x14, 0xb4, 0x6b, 0xa5, 0x3b, 0xd7, 0x90, 0x84, 0x9e, 0x07, 0xc2,
0x7f, 0x1e, 0x08, 0xa0, 0x6f, 0x69, 0xf1, 0xcc, 0x4e, 0xca, 0x07, 0x64, 0xa2, 0xb4, 0xbc, 0x5f, 0xe0, 0xa7, 0x0e,
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0x77, 0x8a, 0x3a, 0xba, 0xf4, 0xa3, 0x9b, 0x05, 0xee, 0x98, 0x50, 0x77, 0xfe, 0x82, 0x5b, 0x29, 0x6d, 0x7c, 0x0c,
0x4b, 0x41, 0xa2, 0x6a, 0xb2, 0x27, 0x32, 0xf1, 0x0c, 0x1d, 0xd7, 0x6c, 0x02, 0x4d, 0xbd, 0xf2, 0x5a, 0x66, 0xd3,
0xb5, 0x30, 0xab, 0x4b, 0x7e, 0x72, 0x77, 0x30, 0x42, 0xd7, 0x70, 0x05, 0x9f, 0xeb, 0x2f, 0x22, 0x7f, 0x49, 0x2d,
0x5d, 0xcf, 0x4b, 0x84, 0x0c, 0xa5, 0xb9, 0xe5, 0x49, 0xae, 0x54, 0x2c, 0x86, 0x53, 0x4c, 0x9c, 0x42, 0x29, 0x78,
0xf0, 0x0a, 0x8a, 0x36, 0x53, 0x4d, 0x2b, 0xc9, 0xe2, 0x69, 0x0e, 0x9a, 0x37, 0x0c, 0x91, 0x2d, 0xac, 0x2f, 0x43,
0x6a, 0xf1, 0xe9, 0xfb, 0xb4, 0x68, 0xec, 0x90, 0x00, 0xff, 0x32, 0xf8, 0x58, 0xab, 0xd1, 0x73, 0x9f, 0x77, 0x72,
0x22, 0xed, 0x64, 0xac, 0x7d, 0xd0, 0xa8, 0x1f, 0x01, 0x99, 0x9f, 0xfd, 0xa6, 0xcb, 0x62, 0xca, 0x65, 0xd8, 0xf8,
0x31, 0xf0, 0xc1, 0x5e, 0xef, 0xf1, 0x4d, 0x79, 0xa9, 0xfc, 0x8f, 0x57, 0xcb, 0xc1, 0xb7, 0x03, 0x30, 0xbb, 0xad,
0xdb, 0x88, 0xf7, 0xcc, 0xa1, 0x25, 0xfd, 0x37, 0x03, 0xc5, 0xdb, 0x7f, 0xb4, 0xe0, 0xe6, 0xa3, 0x7e, 0xa4, 0x52,
0x68, 0xa7, 0x2e, 0xe6, 0x1c, 0xea, 0x91, 0x48, 0x67, 0xbd, 0x3d, 0x6d, 0xcc, 0x09, 0x49, 0x17, 0x50, 0x16, 0xb5,
0x65, 0x63, 0xd4, 0x84, 0x2c, 0x3a, 0x5f, 0x6a, 0x3c, 0x66, 0xfa, 0x24, 0xaf, 0xd1, 0xfd, 0x18, 0x66, 0xe4, 0xe8,
0x3c, 0x6c, 0x74, 0xb6, 0xc5, 0x4c, 0xf8, 0xa8, 0x15, 0x3c, 0xd0, 0xb8, 0x4a, 0x53, 0x15, 0x4b, 0x1e, 0x56, 0x7f,
0xd8, 0x40, 0x01, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
0xfe, 0xe7, 0xdc, 0x03, 0xd1, 0x0f, 0xfd, 0x7c, 0xdc, 0xa1, 0x7e, 0x41, 0x2e, 0x50, 0x37, 0x77, 0x94, 0xb7, 0x4b,
0x90, 0x3b, 0x14, 0x38, 0xe0, 0x80, 0x03, 0x0e, 0x38, 0xe0, 0x80, 0xfb, 0xff, 0xba, 0xff, 0x00,
};
static const uint8_t STORED[] = {
0x01, 0x2c, 0x01, 0xd3, 0xfe, 0x65, 0x73, 0x70, 0x68, 0x6f, 0x6d, 0x65, 0x20, 0x6f, 0x74, 0x61, 0x20, 0x64,
0x65, 0x66, 0x6c, 0x61, 0x74, 0x65, 0x20, 0x65, 0x73, 0x70, 0x68, 0x6f, 0x6d, 0x65, 0x20, 0x6f, 0x74, 0x61,
0x20, 0x64, 0x65, 0x66, 0x6c, 0x61, 0x74, 0x65, 0x20, 0x65, 0x73, 0x70, 0x68, 0x6f, 0x6d, 0x65, 0x20, 0x6f,
0x74, 0x61, 0x20, 0x64, 0x65, 0x66, 0x6c, 0x61, 0x74, 0x65, 0x20, 0x65, 0x73, 0x70, 0x68, 0x6f, 0x6d, 0x65,
0x20, 0x6f, 0x74, 0x61, 0x20, 0x64, 0x65, 0x66, 0x6c, 0x61, 0x74, 0x65, 0x20, 0x65, 0x73, 0x70, 0x68, 0x6f,
0x6d, 0x65, 0x20, 0x6f, 0x74, 0x61, 0x20, 0x64, 0x65, 0x66, 0x6c, 0x61, 0x74, 0x65, 0x20, 0x65, 0x73, 0x70,
0x68, 0x6f, 0x6d, 0x65, 0x20, 0x6f, 0x74, 0x61, 0x20, 0x64, 0x65, 0x66, 0x6c, 0x61, 0x74, 0x65, 0x20, 0x65,
0x73, 0x70, 0x68, 0x6f, 0x6d, 0x65, 0x20, 0x6f, 0x74, 0x61, 0x20, 0x64, 0x65, 0x66, 0x6c, 0x61, 0x74, 0x65,
0x20, 0x65, 0x73, 0x70, 0x68, 0x6f, 0x6d, 0x65, 0x20, 0x6f, 0x74, 0x61, 0x20, 0x64, 0x65, 0x66, 0x6c, 0x61,
0x74, 0x65, 0x20, 0x65, 0x73, 0x70, 0x68, 0x6f, 0x6d, 0x65, 0x20, 0x6f, 0x74, 0x61, 0x20, 0x64, 0x65, 0x66,
0x6c, 0x61, 0x74, 0x65, 0x20, 0x65, 0x73, 0x70, 0x68, 0x6f, 0x6d, 0x65, 0x20, 0x6f, 0x74, 0x61, 0x20, 0x64,
0x65, 0x66, 0x6c, 0x61, 0x74, 0x65, 0x20, 0x65, 0x73, 0x70, 0x68, 0x6f, 0x6d, 0x65, 0x20, 0x6f, 0x74, 0x61,
0x20, 0x64, 0x65, 0x66, 0x6c, 0x61, 0x74, 0x65, 0x20, 0x65, 0x73, 0x70, 0x68, 0x6f, 0x6d, 0x65, 0x20, 0x6f,
0x74, 0x61, 0x20, 0x64, 0x65, 0x66, 0x6c, 0x61, 0x74, 0x65, 0x20, 0x65, 0x73, 0x70, 0x68, 0x6f, 0x6d, 0x65,
0x20, 0x6f, 0x74, 0x61, 0x20, 0x64, 0x65, 0x66, 0x6c, 0x61, 0x74, 0x65, 0x20, 0x65, 0x73, 0x70, 0x68, 0x6f,
0x6d, 0x65, 0x20, 0x6f, 0x74, 0x61, 0x20, 0x64, 0x65, 0x66, 0x6c, 0x61, 0x74, 0x65, 0x20, 0x65, 0x73, 0x70,
0x68, 0x6f, 0x6d, 0x65, 0x20, 0x6f, 0x74, 0x61, 0x20, 0x64, 0x65, 0x66, 0x6c, 0x61, 0x74, 0x65, 0x20,
};
static constexpr size_t WINDOW = 4096;
static constexpr size_t PLAIN_SIZE = 16000;
static uint8_t lcg_next(uint32_t &x) {
x = (x * 1103515245u + 12345u) & 0x7fffffffu;
return (x >> 16) & 0xff;
}
static std::vector<uint8_t> build_plain() {
std::vector<uint8_t> plain;
const char *text = "esphome ota deflate ";
for (int i = 0; i < 300; i++)
plain.insert(plain.end(), text, text + strlen(text));
uint32_t x = 1;
for (int i = 0; i < 3000; i++)
plain.push_back(lcg_next(x));
plain.insert(plain.end(), 5000, 0);
for (int i = 0; i < 100; i++)
plain.insert(plain.end(), text, text + strlen(text));
return plain;
}
// Mirrors the OTA session: chunked input through the read callback, window as output
struct Session : OtaInflateState {
const uint8_t *in;
size_t in_len;
size_t in_pos;
size_t chunk;
std::vector<uint8_t> out;
uint8_t window[WINDOW];
};
static int read_cb(OtaInflateState *d) {
auto *s = static_cast<Session *>(d);
if (s->in_pos >= s->in_len)
return -1;
size_t n = std::min(s->chunk, s->in_len - s->in_pos);
d->source = s->in + s->in_pos + 1;
d->source_limit = s->in + s->in_pos + n;
s->in_pos += n;
return s->in[s->in_pos - n];
}
// Inflates the whole input; returns the decoder result and fills s.out
static int inflate_all(Session &s, const uint8_t *in, size_t in_len, size_t chunk) {
s.in = in;
s.in_len = in_len;
s.in_pos = 0;
s.chunk = chunk;
s.out.clear();
memset(s.window, 0, sizeof(s.window));
ota_inflate_init(&s, s.window, WINDOW);
s.source_read_cb = read_cb;
int res;
do {
s.dest = s.window;
s.dest_limit = s.window + WINDOW;
res = ota_inflate(&s);
if (res < 0 || s.eof)
return res < 0 ? res : OTA_INFLATE_DATA_ERROR;
s.out.insert(s.out.end(), s.window, s.dest);
if (s.out.size() > PLAIN_SIZE)
return OTA_INFLATE_DATA_ERROR;
} while (res != OTA_INFLATE_DONE);
return res;
}
TEST(OtaInflate, RoundTripThroughWindow) {
auto s = std::make_unique<Session>();
ASSERT_EQ(inflate_all(*s, DEFLATED, sizeof(DEFLATED), 1040), OTA_INFLATE_DONE);
EXPECT_EQ(s->out, build_plain());
EXPECT_EQ(s->in_pos, sizeof(DEFLATED));
}
TEST(OtaInflate, SmallReadChunks) {
auto s = std::make_unique<Session>();
ASSERT_EQ(inflate_all(*s, DEFLATED, sizeof(DEFLATED), 7), OTA_INFLATE_DONE);
EXPECT_EQ(s->out, build_plain());
}
TEST(OtaInflate, StoredBlock) {
auto s = std::make_unique<Session>();
ASSERT_EQ(inflate_all(*s, STORED, sizeof(STORED), 64), OTA_INFLATE_DONE);
auto plain = build_plain();
plain.resize(300);
EXPECT_EQ(s->out, plain);
}
TEST(OtaInflate, TruncatedStreamFails) {
auto s = std::make_unique<Session>();
for (size_t cut : {size_t{1}, size_t{100}, size_t{1000}, sizeof(DEFLATED) - 1}) {
EXPECT_LT(inflate_all(*s, DEFLATED, cut, 1040), 0) << "cut at " << cut;
EXPECT_LE(s->out.size(), PLAIN_SIZE);
}
}
TEST(OtaInflate, TruncatedStoredBlockFails) {
auto s = std::make_unique<Session>();
EXPECT_LT(inflate_all(*s, STORED, sizeof(STORED) - 50, 64), 0);
}
TEST(OtaInflate, CorruptStreamsNeverEscapeTheWindow) {
// Flipped bytes and garbage; the sanitizers check the decoder stays in bounds
auto s = std::make_unique<Session>();
std::vector<uint8_t> bad(DEFLATED, DEFLATED + sizeof(DEFLATED));
for (size_t i = 0; i < bad.size(); i += 3) {
bad[i] ^= 0x5a;
inflate_all(*s, bad.data(), bad.size(), 1040);
bad[i] ^= 0x5a;
}
uint32_t x = 99;
std::vector<uint8_t> garbage(2000);
for (int round = 0; round < 50; round++) {
for (auto &b : garbage)
b = lcg_next(x);
inflate_all(*s, garbage.data(), garbage.size(), 1040);
}
}
} // namespace esphome::testing
@@ -0,0 +1 @@
<<: !include common.yaml
@@ -14,7 +14,7 @@ struct MinimalBackend {
OTAResponseTypes write(uint8_t *data, size_t len) { return OTA_RESPONSE_OK; }
OTAResponseTypes end() { return OTA_RESPONSE_OK; }
void abort() {}
bool supports_compression() { return false; }
static constexpr bool supports_compression() { return false; }
};
static_assert(OTABackendContract<MinimalBackend>);
@@ -0,0 +1,29 @@
# Tuya without any network component (no wifi/ethernet/api), as used on
# serial-only or BLE-only Tuya MCU boards. Regression test for
# https://github.com/esphome/esphome/issues/18942
substitutions:
status_pin: P6
packages:
uart: !include ../../test_build_components/common/uart/bk72xx-ard.yaml
tuya:
status_pin: ${status_pin}
binary_sensor:
- platform: tuya
id: tuya_presence
sensor_datapoint: 101
sensor:
- platform: tuya
id: tuya_light_intensity
sensor_datapoint: 103
number:
- platform: tuya
id: tuya_far_detection
number_datapoint: 109
min_value: 0
max_value: 600
step: 1
@@ -1,43 +0,0 @@
esphome:
name: api-decode-wire-types-test
host:
api:
logger:
level: DEBUG
switch:
- platform: template
name: "Wire Switch"
optimistic: true
output:
- platform: template
id: wire_dim
type: float
write_action:
- lambda: ""
light:
- platform: monochromatic
name: "Wire Light"
output: wire_dim
default_transition_length: 0s
effects:
- pulse:
name: Pulse
text:
- platform: template
name: "Wire Text"
optimistic: true
mode: text
min_length: 0
max_length: 255
number:
- platform: template
name: "Wire Number"
optimistic: true
min_value: -1000
max_value: 1000
step: 0.5
@@ -1,11 +0,0 @@
esphome:
name: api-empty-message-test
host:
api:
logger:
level: DEBUG
switch:
- platform: template
name: "Empty Message Switch"
optimistic: true
@@ -1,58 +0,0 @@
esphome:
name: api-encode-boundaries-test
# Top-level area fills DeviceInfoResponse.suggested_area (field 16, a two-byte tag)
area:
id: kitchen_area
name: Kitchen
on_boot:
- sensor.template.publish:
id: zero_then_value
state: 0.0
host:
api:
logger:
level: DEBUG
sensor:
- platform: template
name: "Zero Then Value"
id: zero_then_value
# Negative int32 takes the ten byte varint path
accuracy_decimals: -2
update_interval: never
text_sensor:
- platform: template
name: "Long Text"
id: long_text
update_interval: never
number:
- platform: template
name: "Negative Number"
optimistic: true
min_value: -1000
max_value: 1000
step: 0.5
initial_value: -123.5
select:
- platform: template
name: "Long Option Select"
optimistic: true
options:
- short
- "option-with-a-name-long-enough-that-its-length-prefix-needs-two-varint-bytes-when-the-list-entities-response-is-encoded-xxxxxxxxxx"
initial_option: short
button:
- platform: template
name: "Publish Values"
on_press:
- sensor.template.publish:
id: zero_then_value
state: 12.5
- text_sensor.template.publish:
id: long_text
state: !lambda return std::string(200, 'y');
+4 -5
View File
@@ -125,12 +125,11 @@ class RawApiClient:
await self.read_until_frame(MESSAGE_TYPE_OF[api_pb2.HelloResponse])
async def send_message(self, msg: message.Message) -> None:
await self.send_raw(MESSAGE_TYPE_OF[type(msg)], msg.SerializeToString())
async def send_raw(self, msg_type: int, payload: bytes) -> None:
"""Send a frame with a hand built payload, for shapes protobuf will not serialize."""
loop = asyncio.get_running_loop()
await loop.sock_sendall(self._sock, encode_frame(msg_type, payload))
await loop.sock_sendall(
self._sock,
encode_frame(MESSAGE_TYPE_OF[type(msg)], msg.SerializeToString()),
)
async def read_until_frame(self, msg_type: int, timeout: float = 10.0) -> None:
"""Read until at least one frame of msg_type has been received."""
-40
View File
@@ -57,46 +57,6 @@ async def wait_for_state(
return await asyncio.wait_for(future, timeout=timeout)
class StateWaiter:
"""Route one state subscription to any number of predicate waits."""
def __init__(self) -> None:
self._waiters: list[
tuple[Callable[[EntityState], bool], asyncio.Future[EntityState]]
] = []
def on_state(self, state: EntityState) -> None:
for predicate, future in self._waiters:
if future.done():
continue
try:
matched = predicate(state)
except Exception as exc: # noqa: BLE001 the wait re-raises it, the callback must not die
future.set_exception(exc)
continue
if matched:
future.set_result(state)
async def expect(
self,
predicate: Callable[[EntityState], bool],
timeout: float = 5.0,
label: str | None = None,
) -> EntityState:
"""Wait for the next state matching ``predicate``; states seen before this call do not count."""
entry = (predicate, asyncio.get_running_loop().create_future())
self._waiters.append(entry)
try:
async with asyncio.timeout(timeout):
return await entry[1]
except TimeoutError:
raise TimeoutError(
f"no state matched {label or predicate} within {timeout}s"
) from None
finally:
self._waiters.remove(entry)
def find_entity[T: EntityInfo](
entities: list[EntityInfo],
object_id_substring: str,
@@ -1,142 +0,0 @@
"""decode_field() must take fields that match their declared wire type, drop the ones that do
not, skip unknown fields, and handle two byte tags, varints and length prefixes."""
from __future__ import annotations
from collections.abc import Callable
import struct
from aioesphomeapi import (
EntityState,
LightState,
NumberState,
SwitchState,
TextState,
api_pb2,
)
import pytest
from .raw_api_client import MESSAGE_TYPE_OF, RawApiClient, encode_varint
from .state_utils import InitialStateHelper, StateWaiter, require_entity
from .types import APIClientConnectedFactory, RunCompiledFunction
SWITCH_COMMAND = MESSAGE_TYPE_OF[api_pb2.SwitchCommandRequest]
WIRE_VARINT, WIRE_LENGTH, WIRE_FIXED32 = 0, 2, 5
def tag(field: int, wire_type: int) -> bytes:
return encode_varint((field << 3) | wire_type)
@pytest.mark.asyncio
async def test_api_decode_wire_types(
yaml_config: str,
run_compiled: RunCompiledFunction,
api_client_connected: APIClientConnectedFactory,
unused_tcp_port: int,
) -> None:
async with (
run_compiled(yaml_config),
api_client_connected() as client,
RawApiClient(unused_tcp_port) as raw,
):
entities, _ = await client.list_entities_services()
switch = require_entity(entities, "wire_switch")
light = require_entity(entities, "wire_light")
text = require_entity(entities, "wire_text")
number = require_entity(entities, "wire_number")
key = tag(1, WIRE_FIXED32) + struct.pack("<I", switch.key)
on, off = tag(2, WIRE_VARINT) + b"\x01", tag(2, WIRE_VARINT) + b"\x00"
switch_states: list[bool] = []
waiter = StateWaiter()
def on_state(state: EntityState) -> None:
if isinstance(state, SwitchState) and state.key == switch.key:
switch_states.append(state.state)
waiter.on_state(state)
def switch_is(value: bool) -> Callable[[EntityState], bool]:
return lambda s: (
isinstance(s, SwitchState) and s.key == switch.key and s.state is value
)
def number_is(value: float) -> Callable[[EntityState], bool]:
return lambda s: (
isinstance(s, NumberState) and s.key == number.key and s.state == value
)
initial = InitialStateHelper(entities)
client.subscribe_states(initial.on_state_wrapper(on_state))
await initial.wait_for_initial_states()
await raw.connect()
# A well formed command: fixed32 key, varint state
await raw.send_raw(SWITCH_COMMAND, key + on)
await waiter.expect(switch_is(True))
await raw.send_raw(SWITCH_COMMAND, key + off)
await waiter.expect(switch_is(False))
# The same field with the wrong wire type is dropped, and a varint key never matches an
# entity; each of these would turn the switch on if the payload were read as a varint
seen = len(switch_states)
await raw.send_raw(SWITCH_COMMAND, key + tag(2, WIRE_LENGTH) + b"\x01\x01")
await raw.send_raw(
SWITCH_COMMAND, key + tag(2, WIRE_FIXED32) + b"\x01\x00\x00\x00"
)
await raw.send_raw(
SWITCH_COMMAND, tag(1, WIRE_VARINT) + encode_varint(switch.key) + on
)
# Ordered on the raw socket itself: this frame cannot be parsed before the bad ones, so
# the only switch state since the marker must be the one it produces
await raw.send_raw(SWITCH_COMMAND, key + on)
await waiter.expect(switch_is(True), label="switch on after wrong wire types")
assert switch_states[seen:] == [True]
await raw.send_raw(SWITCH_COMMAND, key + off)
await waiter.expect(switch_is(False))
# Truncated bodies stop the decode loop without taking the connection down: a tag with its
# continuation bit set and nothing after it, a length prefix past the end of the payload,
# and a fixed32 with two of its four bytes
seen = len(switch_states)
await raw.send_raw(SWITCH_COMMAND, key + b"\x80")
await raw.send_raw(SWITCH_COMMAND, key + tag(2, WIRE_LENGTH) + b"\x7f" + b"ab")
await raw.send_raw(SWITCH_COMMAND, tag(1, WIRE_FIXED32) + b"\x01\x02")
await raw.send_raw(SWITCH_COMMAND, key + on)
await waiter.expect(switch_is(True), label="switch on after truncated frames")
assert switch_states[seen:] == [True]
await raw.send_raw(SWITCH_COMMAND, key + off)
await waiter.expect(switch_is(False))
# A negative number goes through the fixed32 float path of a normal client
client.number_command(number.key, -77.5)
await waiter.expect(number_is(-77.5))
# An unknown field ahead of the known ones is skipped; field 200 needs a two byte tag
await raw.send_raw(
SWITCH_COMMAND, tag(200, WIRE_VARINT) + encode_varint(300) + key + on
)
await waiter.expect(switch_is(True))
# Two byte tags (effect fields 18 and 19) and a two byte varint (300 ms transition)
client.light_command(
light.key, state=True, brightness=0.5, transition_length=0.3, effect="Pulse"
)
await waiter.expect(
lambda s: (
isinstance(s, LightState) and s.key == light.key and s.effect == "Pulse"
)
)
client.light_command(light.key, effect="None", state=False)
await waiter.expect(
lambda s: isinstance(s, LightState) and s.key == light.key and not s.state
)
# A string whose length prefix needs two varint bytes
long_text = "w" * 200
client.text_command(text.key, long_text)
await waiter.expect(
lambda s: (
isinstance(s, TextState) and s.key == text.key and s.state == long_text
)
)
@@ -1,37 +0,0 @@
"""Messages without fields go through the shared ProtoMessage entry points on both directions."""
from __future__ import annotations
from aioesphomeapi import api_pb2
import pytest
from .raw_api_client import MESSAGE_TYPE_OF, RawApiClient
from .types import RunCompiledFunction
@pytest.mark.asyncio
async def test_api_empty_message_roundtrip(
yaml_config: str,
run_compiled: RunCompiledFunction,
unused_tcp_port: int,
) -> None:
async with run_compiled(yaml_config), RawApiClient(unused_tcp_port) as client:
await client.connect()
# Field free request and reply on the plain send path
await client.send_message(api_pb2.PingRequest())
await client.read_until_frame(MESSAGE_TYPE_OF[api_pb2.PingResponse])
# Field free request answered by a message with fields, and a list that ends with
# the field free ListEntitiesDoneResponse through the batching path
await client.send_message(api_pb2.DeviceInfoRequest())
await client.read_until_frame(MESSAGE_TYPE_OF[api_pb2.DeviceInfoResponse])
await client.send_message(api_pb2.ListEntitiesRequest())
await client.read_until_frame(MESSAGE_TYPE_OF[api_pb2.ListEntitiesDoneResponse])
assert (
client.frame_counts[MESSAGE_TYPE_OF[api_pb2.ListEntitiesSwitchResponse]]
== 1
)
await client.send_message(api_pb2.DisconnectRequest())
await client.read_until_frame(MESSAGE_TYPE_OF[api_pb2.DisconnectResponse])
@@ -1,78 +0,0 @@
"""Encode paths at their branch boundaries: zero skipped float, fixed32 state, negative int32,
length prefixes of two varint bytes and two byte field tags."""
from __future__ import annotations
import asyncio
from aioesphomeapi import (
NumberState,
SelectInfo,
SensorInfo,
SensorState,
TextSensorState,
)
import pytest
from .state_utils import InitialStateHelper, StateWaiter, require_entity
from .types import APIClientConnectedFactory, RunCompiledFunction
LONG_OPTION = (
"option-with-a-name-long-enough-that-its-length-prefix-needs-two-varint-bytes-"
"when-the-list-entities-response-is-encoded-xxxxxxxxxx"
)
@pytest.mark.asyncio
async def test_api_encode_boundaries(
yaml_config: str,
run_compiled: RunCompiledFunction,
api_client_connected: APIClientConnectedFactory,
) -> None:
async with run_compiled(yaml_config), api_client_connected() as client:
device_info, (entities, _) = await asyncio.gather(
client.device_info(), client.list_entities_services()
)
assert device_info.suggested_area == "Kitchen"
sensor = require_entity(entities, "zero_then_value", SensorInfo)
assert sensor.accuracy_decimals == -2
select = require_entity(entities, "long_option_select", SelectInfo)
assert len(LONG_OPTION) >= 128
assert select.options == ["short", LONG_OPTION]
text = require_entity(entities, "long_text")
number = require_entity(entities, "negative_number")
button = require_entity(entities, "publish_values")
initial = InitialStateHelper(entities)
waiter = StateWaiter()
client.subscribe_states(initial.on_state_wrapper(waiter.on_state))
await initial.wait_for_initial_states()
# A float of exactly zero is skipped on the wire and must still read as 0.0, not missing
first = initial.initial_states[sensor.key]
assert isinstance(first, SensorState)
assert first.state == 0.0 and not first.missing_state
first_number = initial.initial_states[number.key]
assert isinstance(first_number, NumberState)
assert first_number.state == -123.5
client.button_command(button.key)
await asyncio.gather(
waiter.expect(
lambda s: (
isinstance(s, SensorState)
and s.key == sensor.key
and s.state == 12.5
),
label="sensor 12.5",
),
waiter.expect(
lambda s: (
isinstance(s, TextSensorState)
and s.key == text.key
and s.state == "y" * 200
),
label="text 200 x y",
),
)
+5
View File
@@ -180,10 +180,14 @@ async def test_host_ota_self_update(
)
)
staged = asyncio.Event()
inflated = asyncio.Event()
def on_log(line: str) -> None:
if "OTA staged at" in line:
staged.set()
# The host backend cannot store gzip, so the upload negotiates deflate
if "Inflated " in line and " bytes from " in line:
inflated.set()
dev.on_log(line)
async with run_binary(dev.binary_path, line_callback=on_log) as (proc, _lines):
@@ -195,6 +199,7 @@ async def test_host_ota_self_update(
await dev.ota(None, None, "espota2 reported failure")
assert staged.is_set()
assert inflated.is_set(), "upload was not deflate compressed"
async with wait_and_connect_api_client(port=dev.api_port) as client:
info_after = await client.device_info()
@@ -0,0 +1,219 @@
"""Unit tests for script/sync_dependency_versions.py."""
from pathlib import Path
import subprocess
import sys
import pytest
import yamlrocks
sys.path.insert(0, str((Path(__file__).parent / ".." / ".." / "script").resolve()))
import sync_dependency_versions as sync_mod # noqa: E402
PRECOMMIT = """\
# See https://pre-commit.com for more information
repos:
- repo: https://github.com/astral-sh/ruff-pre-commit
# Ruff version.
rev: v0.1.0
hooks:
- id: ruff
- repo: https://github.com/PyCQA/flake8
rev: 7.0.0
hooks:
- id: flake8
- repo: https://github.com/asottile/pyupgrade
rev: v3.0.0
hooks:
- id: pyupgrade
- repo: https://github.com/pre-commit/mirrors-clang-format
rev: v13.0.1
hooks:
- id: clang-format
- repo: https://github.com/adrienverge/yamllint.git
rev: v1.0.0
hooks:
- id: yamllint
- repo: local
hooks:
- id: pylint
"""
REQ_TEST = """\
pylint==4.0.8
flake8==7.1.0
ruff==0.2.0 # comment
pyupgrade==3.0.0
"""
REQ_DEV = """\
clang-format==13.0.1
yamllint==1.0.0
"""
RUFF_REPO = "https://github.com/astral-sh/ruff-pre-commit"
DUPLICATE_RUFF_BLOCK = f" - repo: {RUFF_REPO}\n rev: v0.3.0\n hooks: []\n"
EXPECTED_DRIFT = ["ruff: 0.1.0 -> 0.2.0", "flake8: 7.0.0 -> 7.1.0"]
EXPECTED_PRECOMMIT = PRECOMMIT.replace("rev: v0.1.0", "rev: v0.2.0").replace(
"rev: 7.0.0", "rev: 7.1.0"
)
@pytest.fixture
def root(tmp_path: Path) -> Path:
"""A fake checkout where ruff (v-prefixed) and flake8 (bare) have drifted."""
(tmp_path / ".pre-commit-config.yaml").write_text(PRECOMMIT)
(tmp_path / "requirements_test.txt").write_text(REQ_TEST)
(tmp_path / "requirements_dev.txt").write_text(REQ_DEV)
return tmp_path
def _load(text: str) -> object:
return yamlrocks.loads(text.encode(), option=yamlrocks.OPT_ROUND_TRIP)
@pytest.mark.parametrize(
("requirements", "expected"),
[
("prek==0.5.1 # comment\n", "0.5.1"),
("Prek==0.5.1\n", "0.5.1"),
("other==1.0\nprek==0.5.1\n", "0.5.1"),
("prek>=0.5.1\n", None),
("prek-extra==0.5.1\n", None),
("", None),
],
)
def test_read_requirement_version(requirements: str, expected: str | None) -> None:
assert sync_mod.read_requirement_version(requirements, "prek") == expected
def test_find_repo_entry() -> None:
entry = sync_mod.find_repo_entry(_load(PRECOMMIT), RUFF_REPO)
assert entry["rev"] == "v0.1.0"
@pytest.mark.parametrize(
("text", "message"),
[
("hooks: []\n", "missing key 'repos'"),
("repos:\n - rev: 1.0.0\n", "missing key 'repo'"),
(PRECOMMIT + DUPLICATE_RUFF_BLOCK, "found 2"),
("repos:\n - repo: other\n rev: 1.0.0\n", "found 0"),
],
)
def test_find_repo_entry_errors(text: str, message: str) -> None:
with pytest.raises(sync_mod.SyncError, match=message):
sync_mod.find_repo_entry(_load(text), RUFF_REPO)
@pytest.mark.parametrize(
("rev", "expected"),
[("v0.1.0", ("v", "0.1.0")), ("7.0.0", ("", "7.0.0")), ("'1.0'", ("", "1.0"))],
)
def test_current_rev(rev: str, expected: tuple[str, str]) -> None:
doc = _load(f"repos:\n - repo: {RUFF_REPO}\n rev: {rev}\n")
assert sync_mod.current_rev(doc["repos"][0], RUFF_REPO) == expected
@pytest.mark.parametrize(
("block", "message"),
[(" hooks: []\n", "has no rev"), (" rev: 1.0\n", "not a string: 1.0")],
)
def test_current_rev_errors(block: str, message: str) -> None:
doc = _load(f"repos:\n - repo: {RUFF_REPO}\n{block}")
with pytest.raises(sync_mod.SyncError, match=message):
sync_mod.current_rev(doc["repos"][0], RUFF_REPO)
def test_sync_reports_without_writing(root: Path) -> None:
assert sync_mod.sync(root, write=False) == EXPECTED_DRIFT
assert (root / ".pre-commit-config.yaml").read_text() == PRECOMMIT
def test_sync_writes_keeps_layout_and_is_idempotent(root: Path) -> None:
assert sync_mod.sync(root, write=True) == EXPECTED_DRIFT
assert (root / ".pre-commit-config.yaml").read_text() == EXPECTED_PRECOMMIT
assert sync_mod.sync(root, write=True) == []
def test_sync_does_not_touch_a_config_that_matches(root: Path) -> None:
(root / ".pre-commit-config.yaml").write_text(EXPECTED_PRECOMMIT)
before = (root / ".pre-commit-config.yaml").stat().st_mtime_ns
assert sync_mod.sync(root, write=True) == []
assert (root / ".pre-commit-config.yaml").stat().st_mtime_ns == before
def test_sync_missing_requirement_pin(root: Path) -> None:
(root / "requirements_dev.txt").write_text("")
with pytest.raises(sync_mod.SyncError, match="no 'clang-format==' pin"):
sync_mod.sync(root, write=True)
def test_sync_propagates_config_errors(root: Path) -> None:
(root / ".pre-commit-config.yaml").write_text(PRECOMMIT + DUPLICATE_RUFF_BLOCK)
with pytest.raises(sync_mod.SyncError, match="found 2"):
sync_mod.sync(root, write=True)
def test_main_check_reports_drift(
root: Path, capsys: pytest.CaptureFixture[str]
) -> None:
assert sync_mod.main(["--check", "--root", str(root)]) == 1
assert capsys.readouterr().out.splitlines() == EXPECTED_DRIFT
assert (root / ".pre-commit-config.yaml").read_text() == PRECOMMIT
def test_main_writes_then_check_is_clean(
root: Path, capsys: pytest.CaptureFixture[str]
) -> None:
assert sync_mod.main(["--root", str(root)]) == 0
assert capsys.readouterr().out.splitlines() == EXPECTED_DRIFT
assert sync_mod.main(["--check", "--root", str(root)]) == 0
assert capsys.readouterr().out == ""
def test_main_reports_sync_error(
root: Path, capsys: pytest.CaptureFixture[str]
) -> None:
(root / "requirements_dev.txt").write_text("")
assert sync_mod.main(["--root", str(root)]) == 1
assert (
"error: requirements_dev.txt: no 'clang-format==' pin"
in capsys.readouterr().err
)
def test_main_defaults_to_repo_root(monkeypatch: pytest.MonkeyPatch) -> None:
seen: dict[str, object] = {}
def fake_sync(root: Path, *, write: bool) -> list[str]:
seen["root"] = root
seen["write"] = write
return []
monkeypatch.setattr(sync_mod, "sync", fake_sync)
assert sync_mod.main([]) == 0
assert seen == {"root": sync_mod.REPO_ROOT, "write": True}
def test_repository_is_in_sync() -> None:
"""The real checkout must match; a failure here means a rev has drifted.
Also proves every SYNC_TARGETS entry still resolves in the real files.
"""
assert sync_mod.sync(sync_mod.REPO_ROOT, write=False) == []
def test_cli_entry_point(root: Path) -> None:
"""Run the script the way the workflow does, as a subprocess."""
script = Path(sync_mod.__file__)
result = subprocess.run(
[sys.executable, str(script), "--check", "--root", str(root)],
capture_output=True,
text=True,
check=False,
)
assert result.returncode == 1
assert result.stdout.splitlines() == EXPECTED_DRIFT
@@ -194,17 +194,17 @@ def test_superseded_device_info_fields_still_declared_in_header() -> None:
def test_superseded_device_info_fields_still_encoded_and_sized() -> None:
"""Each superseded field must still be touched by DeviceInfoResponse's
generated encode_msg() and calc_size_msg(), i.e. it is still put on the wire.
generated encode() and calculate_size(), i.e. it is still put on the wire.
"""
encode_body = _extract_function_body(CPP_TEXT, "DeviceInfoResponse::encode_msg")
size_body = _extract_function_body(CPP_TEXT, "DeviceInfoResponse::calc_size_msg")
encode_body = _extract_function_body(CPP_TEXT, "DeviceInfoResponse::encode")
size_body = _extract_function_body(CPP_TEXT, "DeviceInfoResponse::calculate_size")
for field_name in SUPERSEDED_FIELDS:
assert f"msg.{field_name}" in encode_body, (
f"DeviceInfoResponse::encode_msg() no longer references {field_name}. "
assert f"this->{field_name}" in encode_body, (
f"DeviceInfoResponse::encode() no longer references {field_name}. "
f"{DEPRECATED_FIELD_TRAP}"
)
assert f"msg.{field_name}" in size_body, (
f"DeviceInfoResponse::calc_size_msg() no longer references "
assert f"this->{field_name}" in size_body, (
f"DeviceInfoResponse::calculate_size() no longer references "
f"{field_name}. {DEPRECATED_FIELD_TRAP}"
)
@@ -380,13 +380,3 @@ def test_api_version_minor_is_at_least_15() -> None:
"clients to see api_version >= 1.15 in HelloResponse before they will "
"ever request it."
)
def test_generated_encode_calls_keep_the_cursor() -> None:
"""No generated ProtoEncode call may drop the returned cursor."""
dropped = [
line
for line in CPP_TEXT.splitlines()
if "ProtoEncode::" in line and "pos = ProtoEncode::" not in line
]
assert not dropped, dropped[:5]
@@ -15,13 +15,9 @@ import pytest
sys.path.insert(0, str(Path(__file__).parents[4] / "script" / "api_protobuf"))
import aioesphomeapi.api_options_pb2 as pb # noqa: E402
from api_protobuf import ( # noqa: E402
MAX_MESSAGE_ID,
SOURCE_CLIENT,
_make_ifdef_line,
build_message_type,
create_field_type_info,
get_varint64_ifdef,
validate_message_id,
)
@@ -38,26 +34,16 @@ def _file_with_messages(
file_desc = descriptor_pb2.FileDescriptorProto(name="test.proto")
for name, field_type, deprecated in messages:
msg = file_desc.message_type.add(name=name)
field = msg.field.add()
field.CopyFrom(_field(field_type))
field = msg.field.add(name="value", number=1, type=field_type)
field.options.deprecated = deprecated
return file_desc
UINT64 = descriptor_pb2.FieldDescriptorProto.TYPE_UINT64
MESSAGE = descriptor_pb2.FieldDescriptorProto.TYPE_MESSAGE
DOUBLE = descriptor_pb2.FieldDescriptorProto.TYPE_DOUBLE
INT64 = descriptor_pb2.FieldDescriptorProto.TYPE_INT64
SINT64 = descriptor_pb2.FieldDescriptorProto.TYPE_SINT64
UINT32 = descriptor_pb2.FieldDescriptorProto.TYPE_UINT32
INT32 = descriptor_pb2.FieldDescriptorProto.TYPE_INT32
SINT32 = descriptor_pb2.FieldDescriptorProto.TYPE_SINT32
FIXED64 = descriptor_pb2.FieldDescriptorProto.TYPE_FIXED64
FIXED32 = descriptor_pb2.FieldDescriptorProto.TYPE_FIXED32
FLOAT = descriptor_pb2.FieldDescriptorProto.TYPE_FLOAT
BOOL = descriptor_pb2.FieldDescriptorProto.TYPE_BOOL
STRING = descriptor_pb2.FieldDescriptorProto.TYPE_STRING
BYTES = descriptor_pb2.FieldDescriptorProto.TYPE_BYTES
def test_no_varint64_fields() -> None:
@@ -121,190 +107,3 @@ def test_message_id_at_maximum_is_accepted() -> None:
def test_message_id_above_maximum_is_rejected() -> None:
with pytest.raises(ValueError, match="exceeds the plaintext"):
validate_message_id(MAX_MESSAGE_ID + 1, "TooBigMessage")
def _field(
field_type: int, number: int = 1, *, force: bool = False, repeated: bool = False
) -> descriptor_pb2.FieldDescriptorProto:
field = descriptor_pb2.FieldDescriptorProto(
name="value", number=number, type=field_type
)
if repeated:
field.label = descriptor_pb2.FieldDescriptorProto.LABEL_REPEATED
if force:
field.options.Extensions[pb.force] = True
return field
def _encode_field(
field_type: int, number: int = 1, force: bool = False, repeated: bool = False
) -> str:
"""Return the encode statement the generator emits for one encode-only field."""
field = _field(field_type, number, force=force, repeated=repeated)
return create_field_type_info(
field, needs_decode=False, needs_encode=True
).encode_content
SCALAR_TYPES = [
BOOL,
UINT32,
INT32,
UINT64,
INT64,
SINT32,
FLOAT,
FIXED32,
STRING,
BYTES,
]
@pytest.mark.parametrize("field_type", SCALAR_TYPES)
def test_forced_fields_use_the_force_overload_or_raw_writes(field_type: int) -> None:
content = _encode_field(field_type, force=True)
assert (
"_force(" in content
or "write_raw_byte(" in content
or "write_tag_and_fixed32(" in content
), content
@pytest.mark.parametrize("field_type", [FLOAT, FIXED32])
def test_single_byte_tag_fixed32_shares_the_outlined_writer(field_type: int) -> None:
unconditional = _encode_field(field_type, force=True)
assert unconditional.count("write_tag_and_fixed32(pos, 13,") == 1, unconditional
guarded = _encode_field(field_type, force=False)
assert guarded.startswith("if ("), guarded
assert "[[likely]]" in guarded
assert "write_tag_and_fixed32(pos, 13," in guarded
@pytest.mark.parametrize("field_type", [FLOAT, FIXED32])
def test_multi_byte_tag_fixed32_falls_back_to_the_generic_helper(
field_type: int,
) -> None:
content = _encode_field(field_type, number=16)
assert "write_tag_and_fixed32" not in content, content
assert content.startswith("pos = ProtoEncode::encode_"), content
def _decode_case(field_type: int, number: int, *, repeated: bool = False) -> str:
"""Return the decode_field() case the generator emits for one decoded field."""
field = _field(field_type, number, repeated=repeated)
if field_type == MESSAGE:
field.type_name = ".Sub"
return create_field_type_info(
field, needs_decode=True, needs_encode=False
).decode_content
@pytest.mark.parametrize(
("needs_decode", "force", "member"),
[
(False, False, "StringRef value{nullptr, 0}; // null until set, encode only"),
(True, False, "StringRef value{};"),
(False, True, "StringRef value{};"),
],
)
def test_string_fields_default_to_null_only_when_never_read(
needs_decode: bool, force: bool, member: str
) -> None:
"""Only a string that is neither decoded nor force encoded may start as a null StringRef."""
ti = create_field_type_info(
_field(STRING, force=force), needs_decode=needs_decode, needs_encode=True
)
assert ti.public_content == [member]
@pytest.mark.parametrize(
("field_type", "number", "wire_type", "accessor"),
[
(UINT32, 2, "WIRE_TYPE_VARINT", "value.as_varint()"),
(BOOL, 3, "WIRE_TYPE_VARINT", "value.as_bool()"),
(STRING, 1, "WIRE_TYPE_LENGTH_DELIMITED", "value.data()"),
(FLOAT, 4, "WIRE_TYPE_FIXED32", "value.as_float()"),
(FIXED32, 5, "WIRE_TYPE_FIXED32", "value.as_fixed32()"),
],
)
def test_decode_cases_carry_field_number_and_wire_type(
field_type: int, number: int, wire_type: str, accessor: str
) -> None:
"""Each decoded field yields one case keyed on its number and declared wire type."""
case = _decode_case(field_type, number)
lines = case.splitlines()
assert lines[0] == f"case proto_tag({number}, {wire_type}):", case
assert accessor in lines[1], case
assert lines[-1].strip() == "break;", case
@pytest.mark.parametrize(
("field_type", "repeated", "wire_type", "store"),
[
(UINT32, True, "WIRE_TYPE_VARINT", "this->value.push_back(value.as_varint());"),
(
STRING,
True,
"WIRE_TYPE_LENGTH_DELIMITED",
"this->value.push_back(value.as_string());",
),
(
MESSAGE,
False,
"WIRE_TYPE_LENGTH_DELIMITED",
"value.decode_to_message(this->value);",
),
(
MESSAGE,
True,
"WIRE_TYPE_LENGTH_DELIMITED",
"value.decode_to_message(this->value.back());",
),
],
)
def test_repeated_and_message_fields_decode_through_the_same_case_shape(
field_type: int, repeated: bool, wire_type: str, store: str
) -> None:
"""Repeated and sub message fields land in the one switch with their own store."""
case = _decode_case(field_type, 7, repeated=repeated)
lines = case.splitlines()
assert lines[0] == f"case proto_tag(7, {wire_type}):", case
assert store in case, case
if field_type == MESSAGE and repeated:
assert "this->value.emplace_back();" in case, case
assert lines[-1].strip() == "break;", case
def test_a_fixed64_field_fails_at_generation_time() -> None:
"""The decode loop has no 64 bit wire type path, so such a field must never reach it silently."""
desc = descriptor_pb2.DescriptorProto(name="Wide")
desc.field.add(name="ratio", number=1, type=DOUBLE)
with pytest.raises(
ValueError, match="64-bit type 'double' .*ratio.* not supported"
):
build_message_type(desc, {}, {"Wide": SOURCE_CLIENT})
def test_message_gets_a_single_decode_field_override() -> None:
"""All wire types of a decoded message land in one decode_field() switch."""
desc = descriptor_pb2.DescriptorProto(name="Mixed")
desc.field.add(name="name", number=1, type=STRING)
desc.field.add(name="count", number=2, type=UINT32)
desc.field.add(name="level", number=3, type=FLOAT)
header, cpp, _ = build_message_type(desc, {}, {"Mixed": SOURCE_CLIENT})
decl = "void decode_field(uint32_t tag, const uint8_t *data, proto_varint_value_t scalar) override;"
assert header.count(decl) == 1
assert (
cpp.count(
"void Mixed::decode_field(uint32_t tag, const uint8_t *data, proto_varint_value_t scalar) {"
)
== 1
)
assert "switch (tag) {" in cpp
assert "const ProtoFieldValue value(data, scalar);" in cpp
for number, wire_type in (
(1, "WIRE_TYPE_LENGTH_DELIMITED"),
(2, "WIRE_TYPE_VARINT"),
(3, "WIRE_TYPE_FIXED32"),
):
assert f"case proto_tag({number}, {wire_type}):" in cpp, cpp
@@ -0,0 +1,37 @@
"""Tests for the udp component configuration schema."""
from __future__ import annotations
import pytest
from esphome.components import udp
from esphome.components.packet_transport import (
CONF_BINARY_SENSORS,
CONF_ENCRYPTION,
CONF_PING_PONG_ENABLE,
CONF_PROVIDERS,
CONF_ROLLING_CODE_ENABLE,
CONF_SENSORS,
)
import esphome.config_validation as cv
@pytest.mark.parametrize(
"option",
[
CONF_PROVIDERS,
CONF_ENCRYPTION,
CONF_PING_PONG_ENABLE,
CONF_ROLLING_CODE_ENABLE,
CONF_SENSORS,
CONF_BINARY_SENSORS,
],
)
def test_relocated_option_rejected(option: str) -> None:
"""Options that moved to packet_transport raise a pointing error."""
with pytest.raises(cv.Invalid) as exc_info:
udp.CONFIG_SCHEMA({option: True})
assert (
f"The '{option}' option should now be configured in the 'packet_transport' component"
in str(exc_info.value)
)
+49 -2
View File
@@ -12,6 +12,7 @@ from pathlib import Path
import socket
import struct
from unittest.mock import Mock, call, patch
import zlib
import pytest
from pytest import CaptureFixture
@@ -354,6 +355,7 @@ def test_perform_ota_successful_md5_auth(
espota2.CLIENT_FEATURE_SUPPORTS_COMPRESSION
| espota2.CLIENT_FEATURE_SUPPORTS_SHA256_AUTH
| espota2.CLIENT_FEATURE_SUPPORTS_EXTENDED_PROTOCOL
| espota2.CLIENT_FEATURE_SUPPORTS_DEFLATE
]
)
)
@@ -598,12 +600,16 @@ def test_perform_ota_upload_error(mock_socket: Mock, mock_file: io.BytesIO) -> N
espota2.perform_ota(mock_socket, None, mock_file, "test.bin")
def _no_auth_handshake(version: int) -> list[bytes]:
def _no_auth_handshake(version: int, server_features: int | None = None) -> list[bytes]:
"""Recv responses for a handshake without auth, up to the MD5 check."""
if server_features is None:
features = [bytes([espota2.RESPONSE_HEADER_OK])]
else:
features = [bytes([espota2.RESPONSE_FEATURE_FLAGS]), bytes([server_features])]
return [
bytes([espota2.RESPONSE_OK]), # First byte of version response
bytes([version]), # Version number
bytes([espota2.RESPONSE_HEADER_OK]), # Features response
*features,
bytes([espota2.RESPONSE_AUTH_OK]), # No auth required
bytes([espota2.RESPONSE_UPDATE_PREPARE_OK]), # Binary size OK
bytes([espota2.RESPONSE_BIN_MD5_OK]), # MD5 checksum OK
@@ -1051,6 +1057,7 @@ def test_perform_ota_successful_sha256_auth(
espota2.CLIENT_FEATURE_SUPPORTS_COMPRESSION
| espota2.CLIENT_FEATURE_SUPPORTS_SHA256_AUTH
| espota2.CLIENT_FEATURE_SUPPORTS_EXTENDED_PROTOCOL
| espota2.CLIENT_FEATURE_SUPPORTS_DEFLATE
]
)
)
@@ -1107,6 +1114,7 @@ def test_perform_ota_sha256_fallback_to_md5(
espota2.CLIENT_FEATURE_SUPPORTS_COMPRESSION
| espota2.CLIENT_FEATURE_SUPPORTS_SHA256_AUTH
| espota2.CLIENT_FEATURE_SUPPORTS_EXTENDED_PROTOCOL
| espota2.CLIENT_FEATURE_SUPPORTS_DEFLATE
]
)
)
@@ -1216,6 +1224,7 @@ def test_perform_ota_extended_protocol_app(
espota2.CLIENT_FEATURE_SUPPORTS_COMPRESSION
| espota2.CLIENT_FEATURE_SUPPORTS_SHA256_AUTH
| espota2.CLIENT_FEATURE_SUPPORTS_EXTENDED_PROTOCOL
| espota2.CLIENT_FEATURE_SUPPORTS_DEFLATE
]
)
)
@@ -1276,6 +1285,7 @@ def test_perform_ota_successful_partition_table(
espota2.CLIENT_FEATURE_SUPPORTS_COMPRESSION
| espota2.CLIENT_FEATURE_SUPPORTS_SHA256_AUTH
| espota2.CLIENT_FEATURE_SUPPORTS_EXTENDED_PROTOCOL
| espota2.CLIENT_FEATURE_SUPPORTS_DEFLATE
]
)
)
@@ -1504,3 +1514,40 @@ def test_check_error_passes_non_error_when_expect_is_none() -> None:
espota2.check_error([espota2.RESPONSE_OK], None)
espota2.check_error([espota2.RESPONSE_HEADER_OK], None)
espota2.check_error([espota2.RESPONSE_FEATURE_FLAGS], None)
# Device replies after the MD5 check for a one-chunk upload
_UPLOAD_TAIL = [
bytes([espota2.RESPONSE_CHUNK_OK]),
bytes([espota2.RESPONSE_RECEIVE_OK]),
bytes([espota2.RESPONSE_UPDATE_END_OK]),
]
@pytest.mark.usefixtures("mock_time")
@pytest.mark.parametrize(
"server_features",
[
espota2.SERVER_FEATURE_SUPPORTS_DEFLATE,
# Binding offer: deflate wins over gzip
espota2.SERVER_FEATURE_SUPPORTS_DEFLATE
| espota2.SERVER_FEATURE_SUPPORTS_COMPRESSION,
],
)
def test_perform_ota_with_deflate(mock_socket: Mock, server_features: int) -> None:
"""The device gets a raw deflate stream, both sizes and the image MD5."""
original_content = b"firmware" * 100
mock_socket.recv.side_effect = (
_no_auth_handshake(espota2.OTA_VERSION_2_0, server_features) + _UPLOAD_TAIL
)
espota2.perform_ota(mock_socket, None, io.BytesIO(original_content), "test.bin")
sent = [c[0][0] for c in mock_socket.sendall.call_args_list]
# magic, features, ota type, size, image size, md5, data, end ack
sent_size = struct.unpack(">I", sent[3])[0]
assert sent[4] == len(original_content).to_bytes(espota2.SIZE_FIELD_BYTES, "big")
payload = sent[6]
assert len(payload) == sent_size < len(original_content)
assert zlib.decompress(payload, -espota2.DEFLATE_WINDOW_BITS) == original_content
assert sent[5] == hashlib.md5(original_content).hexdigest().encode()
@@ -7,6 +7,7 @@ exercised in their own test modules)."""
import json
import logging
from pathlib import Path
from unittest.mock import Mock
import pytest
@@ -228,6 +229,24 @@ def test_resolve_registry_version_raises_without_pkg_file(monkeypatch):
_resolve_registry_version("owner", "pkg", set())
def test_make_registry_client_skips_private_package_probe(monkeypatch):
"""Our client answers the probe locally without patching PlatformIO's class."""
from platformio.account.client import AccountClient
from platformio.registry.client import RegistryClient
pio_probe = RegistryClient.__dict__["allowed_private_packages"]
monkeypatch.setattr(
AccountClient,
"get_account_info",
Mock(side_effect=AssertionError("account probe must not run")),
)
client = lib._make_registry_client().get_registry_client_instance()
assert client.allowed_private_packages() is False
assert RegistryClient.__dict__["allowed_private_packages"] is pio_probe
def _patch_registry_resolve(monkeypatch: pytest.MonkeyPatch) -> None:
"""Stub the registry lookup so tests never touch the network."""
monkeypatch.setattr(
@@ -1225,6 +1225,20 @@ def test_main_runs_prefetch(tmp_path: Path) -> None:
mock_prefetch.assert_called_once_with(tmp_path, "testenv")
def test_main_skips_private_package_probe_before_prefetch(tmp_path: Path) -> None:
"""The registry probe patch is applied before any package manager runs."""
order: list[str] = []
with (
patch.object(pf, "_prefetch", side_effect=lambda *_: order.append("prefetch")),
patch(
"esphome.platformio.runner.patch_registry_private_packages",
side_effect=lambda: order.append("patch"),
),
):
assert pf.main([str(tmp_path), "testenv"]) == 0
assert order == ["patch", "prefetch"]
def test_main_bad_argv_is_a_distinct_exit(
caplog: pytest.LogCaptureFixture,
) -> None:
@@ -6,7 +6,9 @@ from collections.abc import Callable
import io
import sys
from types import ModuleType
from unittest.mock import Mock
from platformio.registry.client import RegistryClient
import pytest
from esphome.platformio import runner
@@ -30,6 +32,7 @@ def _prepare_main(
monkeypatch.setattr(sys, "stderr", stream)
monkeypatch.setattr(runner, "patch_structhash", lambda: None)
monkeypatch.setattr(runner, "patch_file_downloader", lambda: None)
monkeypatch.setattr(runner, "patch_registry_private_packages", lambda: None)
platformio = ModuleType("platformio")
platformio_main = ModuleType("platformio.__main__")
@@ -91,3 +94,40 @@ def test_main_still_filters_a_drained_partial_line(
assert runner.main() == 0
assert buf.getvalue() == b""
def test_main_applies_registry_private_packages_patch(
monkeypatch: pytest.MonkeyPatch,
) -> None:
"""The probe is patched before PlatformIO runs."""
order: list[str] = []
_prepare_main(monkeypatch, lambda: order.append("pio") or 0)
monkeypatch.setattr(
runner, "patch_registry_private_packages", lambda: order.append("patch")
)
assert runner.main() == 0
assert order == ["patch", "pio"]
# Snapshot PlatformIO's own probe at import, before any test can patch it
_PIO_PROBE = RegistryClient.__dict__["allowed_private_packages"]
def test_patch_registry_private_packages_skips_account_probe(
monkeypatch: pytest.MonkeyPatch,
) -> None:
"""Answers False without touching the account client."""
from platformio.account.client import AccountClient
monkeypatch.setattr(RegistryClient, "allowed_private_packages", _PIO_PROBE)
monkeypatch.setattr(
AccountClient,
"get_account_info",
Mock(side_effect=AssertionError("account probe must not run")),
)
runner.patch_registry_private_packages()
assert RegistryClient.allowed_private_packages() is False
assert RegistryClient().allowed_private_packages() is False