* nrf52_lto: fix variant LTO exclusion (match srcnode, not mirrored path) + post-link guard The CI-fix follow-up in #10829 anchored _is_board_variant() to <PROJECT_DIR>/variants/ using node.get_abspath() -- but build middleware receives nodes from the SCons variant-dir mirror, whose abspath is $BUILD_DIR/variants/.../variant.cpp. The anchor never matched, so the variant silently went back into whole-image LTO: the shipped ELF has initVariant() resolved to the core's weak empty stub (bare `bx lr`), PIN_3V3_EN is never driven, and the SX1262 probe fails with CHIP_NOT_FOUND again -- while the build stays green, because the post-link guard only checked IRQ handlers. Fix: match against node.srcnode().get_abspath(), which undoes the variant-dir mirror (the same trick piobuild.py uses for middleware pattern matching). Add a second post-link guard so this failure mode is a red build, not a field failure: the linked variant.cpp.o must contain no .gnu.lto_* sections (proves the -fno-lto recompile fired), and any override the object defines strong (initVariant) must resolve strong in the ELF. Verified both ways on nrf52_promicro_diy_tcxo: clean build is green with T _Z11initVariantv and a real initVariant body in the ELF; re-breaking the matcher turns the build FAILED with both guard checks firing. clod helped a lot * address comments * nrf52_lto: defer variant CCFLAGS so APP_VERSION is present The variant -fno-lto recompile snapshotted projenv["CCFLAGS"] inside the build middleware, which fires during $BUILD_SCRIPT. But -DAPP_VERSION... is appended to projenv by bin/platformio-custom.py, an unprefixed extra_script that PlatformIO runs as a POST script -- after the middleware. The frozen override therefore lacked APP_VERSION, so recompiling any board variant whose variant.cpp includes configuration.h (rak_wismeshtag via sleep.h, seeed_xiao_nrf52840_kit, seeed_mesh_tracker_X1) failed with 'APP_VERSION must be set by the build environment'. Defer the CCFLAGS read to a callable construction variable: SCons invokes it during command substitution, after every SConscript (post-scripts included), so projenv now carries the version flags. -fno-lto is appended last so it still wins over the inherited -flto. Verified clean builds of rak_wismeshtag, seeed_xiao_nrf52840_kit, and rak4631 (regression) -- all green with the variant guard reporting the board variant kept out of LTO. --------- Co-authored-by: Ben Meadors <benmmeadors@gmail.com>
313 lines
15 KiB
Python
313 lines
15 KiB
Python
#!/usr/bin/env python3
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# trunk-ignore-all(ruff/F821)
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# trunk-ignore-all(flake8/F821)
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#
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# Whole-image LTO for nrf52840 (~-60KB; ~-23KB beyond src-only LTO), EXCEPT the objects
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# that own interrupt/exception handlers.
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#
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# Every ISR is referenced only from the assembly vector table (gcc_startup_nrf52840.S),
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# which LTO cannot see -> whole-program LTO judges the handlers dead, removes them, and
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# the weak `b .` Default_Handler stubs prevail -> the IRQ lands in an infinite loop and the
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# chip hangs (or the peripheral silently stalls). Compiling the handler-bearing objects
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# WITHOUT LTO lets ordinary linking keep the strong handlers; everything else stays LTO'd:
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# - framework core (/FrameworkArduino/, /cores/nRF5/): every nrfx ISR + the FreeRTOS
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# SVC/PendSV port.
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# - TinyUSB nrf port (Adafruit_TinyUSB_nrf.cpp): USBD_IRQHandler (USB data path).
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# - library .cpp files that own a vector ISR (would otherwise be silently dropped):
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# bluefruit.cpp -> SD_EVT/SWI2_EGU2 (SoftDevice BLE-event delivery -- advertising
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# hangs without it)
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# Wire_nRF52.cpp -> SPIM0/TWIM0 + SPIM1/TWIM1 (interrupt-driven I2C/SPI)
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# PDM.cpp -> PDM_IRQHandler (PDM microphone)
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# RotaryEncoder.cpp -> QDEC_IRQHandler (hardware quadrature/rotary encoder)
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#
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# A post-link guard (bottom of this file) fails the build if a critical handler was dropped
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# anyway -- so a future deps bump or a new ISR-owning library becomes a red build, not a field
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# hang. To hunt a dropped ISR by hand: nm the .elf for `_IRQHandler$` symbols marked `W`, then
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# grep the libs/framework for who defines them.
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#
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# HW-validated: RAK4631 (SX1262) + muzi-base (LR1121).
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import glob
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import os
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Import("env")
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env.Append(LINKFLAGS=["-flto", "-flto-partition=1to1"])
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# The ISR -fno-lto re-compiles below run with the global env, which lacks the framework's
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# bundled-library include dirs -- and those libs cross-include each other (Wire pulls in
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# Adafruit_TinyUSB.h, which pulls in SPI.h, ...). Add every bundled-lib dir (+ its src/) so
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# the re-compiles resolve without chasing headers one at a time.
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_fw = env.PioPlatform().get_package_dir("framework-arduinoadafruitnrf52") or ""
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_extra_inc = []
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for _d in sorted(glob.glob(os.path.join(_fw, "libraries", "*"))):
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if os.path.isdir(_d):
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_extra_inc.append(_d)
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if os.path.isdir(os.path.join(_d, "src")):
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_extra_inc.append(os.path.join(_d, "src"))
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FRAMEWORK = ("/FrameworkArduino/", "/cores/nRF5/")
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USB_ISR = "Adafruit_TinyUSB_nrf" # USBD_IRQHandler
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# Library .cpp files that define vector-table ISRs (the rest of their lib stays LTO'd):
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LIB_ISR = ("/bluefruit.cpp", "/Wire_nRF52.cpp", "/PDM.cpp", "/RotaryEncoder.cpp")
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# The active board variant file owns strong overrides of the core's weak initVariant()/
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# earlyInitVariant()/lateInitVariant() stubs (cores/nRF5/main.cpp). Same failure mode as the ISRs
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# above: whole-image LTO mis-resolves the call (made from the -fno-lto framework core) to the empty
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# WEAK stub, so the board's early hardware setup -- e.g. driving PIN_3V3_EN to power the LoRa/sensor
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# rail -- silently never runs and the radio probe finds no chip. Compiling the variant without LTO
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# lets ordinary linking pick the strong override. HW-proven on nrf52_promicro_diy_tcxo (boot-trace
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# 2026-06-30). NOTE: only the real board variant (built from /variants/...) -- NOT the guarded
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# src/platform/extra_variants/*/variant.cpp no-op stubs, which don't tolerate the -fno-lto recompile.
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#
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# Anchor to THIS repo's variants/ tree: a board variant lives at
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# <PROJECT_DIR>/variants/<arch>/<board>/variant.cpp. Anchoring deliberately excludes
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# - PlatformIO's framework-owned .../framework-arduinoadafruitnrf52/variants/*/variant.cpp
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# - the src/platform/extra_variants/*/variant.cpp stubs (they live under src/, not variants/)
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# both of which also end in "/variant.cpp" but must NOT be recompiled here.
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#
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# CAUTION: middleware nodes come from the SCons variant-dir mirror, so node.get_abspath() is
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# $BUILD_DIR/variants/.../variant.cpp -- NOT the repo path. Matching the anchor against the
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# mirrored path never hits, which silently re-enables LTO on the variant (the post-link guard
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# below turns that into a red build). srcnode() undoes the mirror and yields the real source
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# path -- the same trick piobuild.py itself uses for middleware pattern matching.
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_PROJECT_VARIANTS = (
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env.subst("$PROJECT_DIR").replace("\\", "/").rstrip("/") + "/variants/"
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)
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def _is_board_variant(node, path):
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try:
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src = node.srcnode().get_abspath().replace("\\", "/")
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except Exception:
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src = path
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return (
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src.endswith("/variant.cpp")
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and src.startswith(_PROJECT_VARIANTS)
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and "extra_variants" not in src
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)
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# projenv is the construction env PlatformIO uses to compile project sources (src/ + the board
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# variant). Unlike the bare framework env captured above, it carries the -DAPP_VERSION... flags
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# and the generated-protobuf include path (pb.h) that bin/platformio-custom.py appends *after*
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# this pre-script's eval. It isn't exported yet at eval time, but it is by the time the build
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# middleware fires -- so fetch it lazily from SCons' export registry, falling back to env.
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_projenv_cache = []
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def _get_projenv():
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if not _projenv_cache:
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try:
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from SCons.Script.SConscript import global_exports
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_projenv_cache.append(global_exports.get("projenv", env))
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except Exception:
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_projenv_cache.append(env)
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return _projenv_cache[0]
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def _variant_ccflags(target, source, env, for_signature):
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# Deferred CCFLAGS for the board variant recompile. SCons calls this while substituting the
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# compile command (build phase), so projenv's CCFLAGS now include the -DAPP_VERSION... flags
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# that bin/platformio-custom.py appends as a POST extra_script. -fno-lto goes last to override
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# the inherited -flto and keep the variant's strong initVariant() out of whole-image LTO.
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return list(_get_projenv()["CCFLAGS"]) + ["-fno-lto"]
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def _no_lto(node):
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try:
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path = node.get_abspath()
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except Exception:
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path = str(node)
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path = path.replace(
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"\\", "/"
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) # normalize Windows backslashes so matches work cross-platform
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if (
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USB_ISR in path
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or any(s in path for s in FRAMEWORK)
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or any(s in path for s in LIB_ISR)
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):
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return env.Object(
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node,
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CCFLAGS=env["CCFLAGS"] + ["-fno-lto"],
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CPPPATH=env["CPPPATH"] + _extra_inc,
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)
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if _is_board_variant(node, path):
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# The board variant is a project source, not a framework object: it can #include
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# configuration.h/sleep.h, which need the -DAPP_VERSION... define and the generated-
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# protobuf include path (pb.h). Recompile it with projenv, which carries both.
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#
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# TIMING: those -DAPP_VERSION... flags are appended to projenv by bin/platformio-custom.py,
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# which is an unprefixed extra_script -> PlatformIO runs it as a POST script, i.e. AFTER
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# $BUILD_SCRIPT, where this build middleware already fired. So projenv["CCFLAGS"] read HERE
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# is a pre-append snapshot with no -DAPP_VERSION -> the recompile dies with
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# "APP_VERSION must be set". Defer the read to a callable construction variable: SCons
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# invokes it during command substitution (after every SConscript, post-scripts included),
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# by which point projenv carries the version flags. -fno-lto is appended last so it wins.
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build_env = _get_projenv()
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return build_env.Object(
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node,
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CCFLAGS=_variant_ccflags,
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CPPPATH=build_env["CPPPATH"] + _extra_inc,
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)
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return node
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env.AddBuildMiddleware(_no_lto)
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# --- post-link guard: catch a dropped ISR handler at build time (CI footgun protection) ----
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# After every link, fail the build if one of these critical vector-table handlers resolved to
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# the weak `b .` Default_Handler stub -- i.e. LTO (or a deps bump, or a new ISR-owning library
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# that nobody added to LIB_ISR) silently dropped it. A dropped handler hangs the chip the
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# instant that IRQ fires; this turns a field hang into a red build. CI builds every nrf52840
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# target, so this runs on every PR automatically. If a board deliberately stops using one of
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# these, edit the tuples on purpose.
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_REQUIRED_STRONG = (
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"SWI2_EGU2_IRQHandler", # SoftDevice BLE event (SD_EVT) -- advertising & connections
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"GPIOTE_IRQHandler", # GPIO interrupts: radio DIO + buttons
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"RTC1_IRQHandler", # FreeRTOS scheduler tick
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)
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# Owned by the TinyUSB stack, so only required when the board builds with USB at all.
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# Boards without native USB wiring (e.g. wio-sdk-wm1110's CH340 UART) strip TinyUSB via
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# disable_adafruit_usb.py / unflagging USE_TINYUSB, leaving these legitimately weak.
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_REQUIRED_STRONG_USB = (
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"USBD_IRQHandler", # USB CDC (serial console + 1200bps DFU trigger)
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"POWER_CLOCK_IRQHandler", # USB power events (VBUS detect/ready) via TinyUSB hal
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)
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_tc = env.PioPlatform().get_package_dir("toolchain-gccarmnoneeabi") or ""
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_NM = os.path.join(_tc, "bin", "arm-none-eabi-nm")
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if not os.path.isfile(_NM):
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_NM = "arm-none-eabi-nm" # fall back to PATH
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def _assert_isr_handlers_survived(source, target, env):
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import subprocess
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import sys
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try:
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# Resolve the ELF at build time; target[0] is the buildprog alias, not the file.
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elf = env.subst("$BUILD_DIR/${PROGNAME}.elf")
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out = subprocess.check_output([_NM, elf], universal_newlines=True)
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except Exception as exc: # tooling hiccup: warn loudly, don't wedge the build
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print("nrf52_lto: WARNING - ISR-handler guard skipped (nm failed: %s)" % exc)
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return
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# nm line: "<addr> <type> <symbol>". type 'T'/'t' = strong (good); 'W'/'w' = weak stub.
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kind = {}
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for line in out.split("\n"):
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f = line.split()
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if len(f) >= 3 and f[-1].endswith("_IRQHandler"):
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kind[f[-1]] = f[-2]
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required = list(_REQUIRED_STRONG)
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defines = [
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str(d[0] if isinstance(d, tuple) else d) for d in env.get("CPPDEFINES", [])
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]
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if "USE_TINYUSB" in defines:
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required += _REQUIRED_STRONG_USB
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dropped = [h for h in required if kind.get(h, "W").upper() != "T"]
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if dropped:
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sys.stderr.write(
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"\n*** nrf52 LTO guard: interrupt handler(s) DROPPED: %s ***\n"
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"Each resolved to the weak Default_Handler stub, so the chip hangs when that IRQ\n"
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"fires. Compile the .cpp that defines the handler with -fno-lto by adding it to\n"
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"LIB_ISR in extra_scripts/nrf52_lto.py. Find the owner of FOO_IRQHandler with:\n"
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" grep -rl FOO_IRQHandler <framework-arduinoadafruitnrf52>/{libraries,cores}\n\n"
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% ", ".join(dropped)
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)
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from SCons.Script import Exit
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Exit(1) # canonical SCons build-abort -> red build
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print(
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"nrf52_lto: ISR-handler guard OK -- %d critical handlers strong" % len(required)
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)
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# --- post-link guard #2: the board variant's strong overrides must reach the ELF -----------
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# The active variant.cpp overrides the core's weak initVariant() (cores/nRF5/main.cpp). If the
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# -fno-lto middleware above stops matching it -- e.g. a path-shape change; the middleware sees
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# $BUILD_DIR-mirrored nodes, and anchoring against the repo path already broke the match once
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# (2026-07) -- LTO resolves the core's call to the empty weak stub, the board's early hardware
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# setup silently vanishes (promicro DIY: PIN_3V3_EN rail never driven -> SX1262 CHIP_NOT_FOUND),
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# and the build stays green. Turn that into a red build:
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# 1. the linked variant.cpp.o must not be an LTO object (proves the -fno-lto recompile fired);
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# 2. any override the object defines strong must resolve strong in the ELF.
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_VARIANT_OVERRIDES = (
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"_Z11initVariantv",
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) # extend if the core grows more weak variant hooks
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def _assert_variant_survived(source, target, env):
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import subprocess
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import sys
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objs = glob.glob(
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os.path.join(env.subst("$BUILD_DIR"), "variants", "**", "variant.cpp.o"),
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recursive=True,
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)
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if not objs:
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return # env links no in-repo board variant
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problems = []
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elf_kind = {}
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obj_kind = {}
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try:
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for obj in objs:
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# An LTO object carries .gnu.lto_* sections; their names live in the shstrtab,
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# so a byte scan is a sufficient (and toolchain-free) detector.
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with open(obj, "rb") as f:
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if b".gnu.lto" in f.read():
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problems.append(
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"%s was compiled WITH LTO -- the -fno-lto middleware did not match it"
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% obj
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)
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def _kinds(nm_out):
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kinds = {}
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for line in nm_out.split("\n"):
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f = line.split()
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if len(f) >= 3:
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kinds[f[-1]] = f[-2]
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return kinds
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elf = env.subst("$BUILD_DIR/${PROGNAME}.elf")
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elf_kind = _kinds(subprocess.check_output([_NM, elf], universal_newlines=True))
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for obj in objs:
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obj_kind.update(
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_kinds(subprocess.check_output([_NM, obj], universal_newlines=True))
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)
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except Exception as exc: # tooling hiccup (e.g. an nm that can't read slim LTO
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# objects): warn and skip the symbol comparison, but never let it mask a
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# violation the .gnu.lto byte-scan above already recorded in `problems`.
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print("nrf52_lto: WARNING - variant guard incomplete (%s)" % exc)
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if not problems:
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return
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for sym in _VARIANT_OVERRIDES:
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if (
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obj_kind.get(sym, "").upper() == "T"
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and elf_kind.get(sym, "W").upper() != "T"
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):
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problems.append(
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"%s is strong in variant.cpp.o but weak/absent in the ELF "
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"(LTO resolved the core's call to the empty weak stub)" % sym
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)
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if problems:
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sys.stderr.write(
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"\n*** nrf52 LTO guard: board variant DROPPED from the image ***\n%s\n"
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"The variant's early hardware setup (initVariant) will never run on this board.\n"
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"Check _is_board_variant() in extra_scripts/nrf52_lto.py -- middleware nodes are\n"
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"$BUILD_DIR-mirrored; match srcnode() paths, not node.get_abspath().\n\n"
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% "\n".join(" - " + p for p in problems)
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)
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from SCons.Script import Exit
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Exit(1)
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print("nrf52_lto: variant guard OK -- board variant kept out of LTO")
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# Attach to the phony "buildprog" alias, NOT the .elf file node: SCons can skip a post-action
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# on a file target during an incremental relink (observed), but the buildprog alias runs every
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# build -- so the guard fires on local incremental rebuilds and clean CI builds alike.
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env.AddPostAction("buildprog", _assert_isr_handlers_survived)
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env.AddPostAction("buildprog", _assert_variant_survived)
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