change(build): drop BUILD_COMPONENTS support and migrate test_apps to not use it for buildv2
Closes IDF-15859
See merge request espressif/esp-idf!51695
Auto-detect used to pick the first Espressif device, even when it did
not match IDF_TARGET. With several boards attached, flash/monitor could
talk to the wrong chip.
Pass the project target into esptool so unmatched ports are skipped.
Resolve the port after ensure_build_directory() so the target is known.
For monitor on an unconfigured project, probe the connected chip and
pass it directly to idf_monitor without configuring the project.
pytest.ini enables log_cli, so logging the full ninja stdout after a
failed first-time build is one multi-MB ERROR. That hung shard 3/6 for
hours after the hints test. Log the last 80 lines; keep the full output
on the exception and at DEBUG.
git worktree add materializes submodules as gitlink files. rmtree() cannot
remove those, and exists()+iterdir() on a source gitlink raises and falls
back to shutil.copytree, which leaves mbedtls/include as a file. Unlink
dest gitlinks and only copy populated source directories.
sdkconfig.ci.memprot_esp32s3 was built but listed in no CONFIGS_MEMPROT_*, so
the S3 PMS panic path was never exercised.
expect_gme() takes an optional core, for panics with no attributable core.
Reading the BUILD_COMPONENTS build property aborts the build with a bare
message stating that the property is unsupported, without naming a
replacement. Add a hint that points at the $<TARGET_EXISTS:idf::component>
generator expression and at the documentation section describing the
migration, so the guidance lives with the other build hints instead of
being spelled out in the build system sources.
The compatibility shim populated BUILD_COMPONENTS from the library
interface's linked-components list so that consumers reading it kept
working. Those consumers now query the library interface directly, so
drop the shim population and reject reads of the property
unconditionally.
The BUILD_COMPONENTS build property only exists when building through the
Build system v1 compatibility shim. Query the executable library
interface's linked-components list instead, so the app does not depend on
compatibility-only properties.
The BUILD_COMPONENTS build property only exists when building through the
Build system v1 compatibility shim. Query the executable library
interface's linked-components list instead, so the app does not depend on
compatibility-only properties.
The BUILD_COMPONENTS build property only exists when building through the
Build system v1 compatibility shim. Query the executable library
interface's linked-components list instead, so the app does not depend on
compatibility-only properties.
The bootloader programs only unlocked PMA entries (no PMP), so the layout is
not a bootloader<->application ABI; the application resets all entries, programs
them in ascending order from IRAM, and locks everything. Verified on ESP32-H4 v0.1.
idf.py mcp-server printed startup, shutdown, and error messages on
stdout. On the stdio MCP transport, stdout is the JSON-RPC channel, so
those non-JSON lines can confuse or break strict clients. Route them to
stderr like the other diagnostics in mcp_ext.py.
Co-authored-by: Cursor <cursoragent@cursor.com>
idf.py mcp-server tool handlers were spawning idf.py without redirecting
stdin, so the child inherited the long-lived MCP JSON-RPC transport and
could hang indefinitely on tools/call. Pass stdin=subprocess.DEVNULL on
every spawn of idf.py.
Closes https://github.com/espressif/esp-idf/issues/18961
Both PSRAM layouts were mapped as a single RWX window, so everything in external
RAM - the heap included - was executable.
PSRAM used as data only is now RW, and under XIP-from-PSRAM it is split per
section as ESP32-P4 does: .text RX, .rodata read-only, and the MMU-page
alignment gaps and the reclaimed heap RW, so neither is executable.
Both describe the layout that esp_psram_init() produces, and the entries are
locked, so - again as on ESP32-P4 - they are only narrowed when
CONFIG_SPIRAM_PRE_CONFIGURE_MEMORY_PROTECTION says that layout applies. Without
it the application owns the region and PSRAM stays RWX.
The per-section entries cost one PMP entry more than the 16 available, so the CPU
subsystem and peripheral windows are chained as TOR entries, taking one entry
instead of three.
soc.h is corrected against the S31 bus address map: the peripheral window base
was 1 MB too low, and the LP peripheral top, derived from a register base plus a
size rather than from the map, was 16 KB short. SOC_NON_CACHEABLE_OFFSET_FLASH
is added.