HALF_DUPLEX deploys a shared line per backend. The hardware USART takes the library's .half_duplex turn-around — RXD and TXD tied off-chip, each reply byte held to transmit-complete before the line can be released (m8 404 B, m328P 440, 1284P 460; the window poll runs through the outlined release-line call at 18 or 22 cycles a poll, measured off the built loops and held per chip by pureboot.window.halfduplex). The software and autobaud links fold onto the RX pin — RX == TX spells the same — and cost nothing: the frame's direction wrap is what the dropped second-pin init paid, and the worst image in the space is unchanged at the 1284s' 502 of 512, now with its one-wire twin proven equal across the exhaustive matrix. The host gains --one-wire, the echo discard a shared line requires: the adapter's echo is matched byte for byte and a reply interleaving a blind write — a loader already in session re-prompts inside the knock — is held for the reader. The device runner models the shared line by direction (drives only while the firmware's DDR reads input, decodes only while the firmware owns it, supplies the host-side echo), extends the USART pin-ownership model to RXEN's hold on RXD, and starts the pty USART from the datasheet's zeroed UCSR#B: simavr's TXEN-set reset plus its clear-UDRE-on-TXEN-drop otherwise wedges the first transmitter after a receiver-only program, which the half-duplex window gate caught as a banner that never came. v7 is tagged at its era's last commit; v8 changes nothing on the wire. Co-Authored-By: Claude Fable 5 <noreply@anthropic.com>
715 lines
39 KiB
CMake
715 lines
39 KiB
CMake
cmake_minimum_required(VERSION 3.28)
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project(tsb_libavr LANGUAGES CXX)
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# libavr rides as the pinned submodule; LIBAVR_ROOT (cache or environment)
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# overrides it for tandem development against a working tree. The toolchain
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# file comes from the submodule via CMakePresets.json either way.
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if(NOT LIBAVR_ROOT AND DEFINED ENV{LIBAVR_ROOT})
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set(LIBAVR_ROOT $ENV{LIBAVR_ROOT})
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endif()
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if(NOT LIBAVR_ROOT)
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set(LIBAVR_ROOT ${CMAKE_CURRENT_SOURCE_DIR}/libavr)
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endif()
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if(NOT EXISTS ${LIBAVR_ROOT}/CMakeLists.txt)
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message(FATAL_ERROR "libavr not found at ${LIBAVR_ROOT} — run: git submodule update --init libavr")
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endif()
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add_subdirectory(${LIBAVR_ROOT} libavr-build)
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if(PROJECT_IS_TOP_LEVEL)
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add_compile_options(-Werror) # warnings are errors for the port's own code
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enable_testing()
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# The behavioral tests drive the real wire protocols over a simavr pty
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# (as the host tools do) and actually flash the device. The runners are
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# host programs built at configure time against libsimavr (C++23 — what
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# the distribution's compiler speaks in full); if they or Python are
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# missing, only the size tests run.
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find_program(_host_cxx NAMES c++ g++)
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find_package(Python3 COMPONENTS Interpreter)
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if(_host_cxx AND Python3_FOUND)
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set(PB_DEVICE ${CMAKE_BINARY_DIR}/pureboot_device)
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execute_process(
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COMMAND ${_host_cxx} -std=c++23 -Wall -Wextra -O2
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-I/usr/include/simavr -I/usr/include/simavr/parts
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-o ${PB_DEVICE} ${CMAKE_CURRENT_SOURCE_DIR}/test/pureboot_device.cpp
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-lsimavr -lsimavrparts -lelf -lutil
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RESULT_VARIABLE _pbdev_res ERROR_VARIABLE _pbdev_err)
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if(NOT _pbdev_res EQUAL 0)
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message(STATUS "pureboot_device not built (${_pbdev_err}) — protocol tests skipped")
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unset(PB_DEVICE)
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endif()
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if(LIBAVR_MCU STREQUAL "atmega328p")
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set(TSB_DEVICE ${CMAKE_BINARY_DIR}/tsb_device)
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execute_process(
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COMMAND ${_host_cxx} -std=c++23 -Wall -Wextra -O2
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-I/usr/include/simavr -I/usr/include/simavr/parts
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-o ${TSB_DEVICE} ${CMAKE_CURRENT_SOURCE_DIR}/test/device.cpp
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-lsimavr -lsimavrparts -lelf
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RESULT_VARIABLE _dev_res ERROR_VARIABLE _dev_err)
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if(NOT _dev_res EQUAL 0)
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message(STATUS "tsb_device not built (${_dev_err}) — protocol tests skipped")
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unset(TSB_DEVICE)
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endif()
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endif()
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endif()
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endif()
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# The ELF is only a container (symbols, section headers) and is never flashed —
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# and the host tool's load_image() dispatches on extension, so handing it one
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# would silently program the header bytes. Every loader image therefore gets
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# both flashable forms beside it at link time: .hex for avrdude, and .bin for
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# the host tool's raw path (which is what the reloc and update tests convert to
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# on the fly). .eeprom is dropped — EEPROM content is its own update.
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function(add_image_outputs name)
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add_custom_command(TARGET ${name} POST_BUILD
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COMMAND ${CMAKE_OBJCOPY} -O ihex -R .eeprom
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$<TARGET_FILE:${name}> $<TARGET_FILE:${name}>.hex
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COMMAND ${CMAKE_OBJCOPY} -O binary -R .eeprom
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$<TARGET_FILE:${name}> $<TARGET_FILE:${name}>.bin)
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endfunction()
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# The TinySafeBoot protocol reimplemented on libavr in variants that trade
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# clarity for size. Each links into the ATmega328P boot section (BOOTSZ selects
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# its size; BOOTRST vectors a reset to its base) with -nostartfiles — a polled
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# loader has no use for the crt or the vector table. The entry sits in
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# .vectors, laid first, and runs — avr::startup::entry on the policy tier,
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# the experiment tiers' own naked stubs elsewhere, each documented in its
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# source. The boot base is FLASHEND+1 minus the section size; the linker
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# section-start and the source's boot_bytes agree. tsb_app is
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# the application's reset vector, pinned to 0 here so the loaders jump to a
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# named function; --pmem-wrap-around lets relaxation turn that absolute jump
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# into the wrapped rjmp AVR's modulo-flash PC actually executes.
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# All four implement the full oracle feature set (see oracle/README.md):
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# watchdog bail, one-wire half-duplex, config-page activation timeout, password
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# gate, emergency erase, config/flash/EEPROM read-write. They differ only in how,
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# and the size gradient is the cost of that "how" — see dev/lessons.md.
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# tsb_asm — the tricks tier's C++ with exactly two routines in asm (the
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# bounded rx and the page-store loop — the two whose remaining
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# cost is the C ABI itself): 510 B in the 512 B section the
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# hand-written 500 B oracle occupies. Everything else, from
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# bring-up to dispatch, is C++ on libavr.
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# tsb_tricks — no asm at all: the whole-loader register allocation lives in
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# global register variables (Y walks the page pointer), every
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# helper is a tiny noinline primitive placed by the
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# global-register store rules, pages stream straight to
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# SPM/EEPROM, and the bring-up is the two reset-non-default
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# registers only. 526 B in the 1 KB section (BOOTSZ=10) — 14
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# over the oracle's section, from 168 over at this tier's first
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# floor.
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# tsb_pure — pure idiomatic libavr, one function per command, TU-local
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# (internal linkage), streaming (no SRAM page buffer): 836 B in
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# the 1 KB section.
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# tsb_policy — the policy floor: pureboot's rules (no asm, no register
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# variables) with every pureboot lesson applied. 638 B in the
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# 1 KB section — the measured evidence that the 512 B fit is a
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# property of the mechanisms philosophy #5 bans.
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#
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# add_tsb_variant(<name> <boot-section-bytes>)
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function(add_tsb_variant name bytes)
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math(EXPR base_dec "32768 - ${bytes}")
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math(EXPR base_hex "${base_dec}" OUTPUT_FORMAT HEXADECIMAL)
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add_executable(${name} tsb/${name}.cpp)
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target_link_libraries(${name} PRIVATE libavr)
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target_link_options(${name} PRIVATE -nostartfiles -Wl,--section-start=.text=${base_hex}
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-Wl,--defsym=tsb_app=0 -Wl,--pmem-wrap-around=32k)
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add_custom_command(TARGET ${name} POST_BUILD COMMAND ${CMAKE_SIZE} $<TARGET_FILE:${name}>)
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add_image_outputs(${name})
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if(PROJECT_IS_TOP_LEVEL)
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add_test(NAME ${name}.size
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COMMAND ${CMAKE_COMMAND} -DSIZE_TOOL=${CMAKE_SIZE} -DELF=$<TARGET_FILE:${name}>
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-DLIMIT=${bytes} -P ${CMAKE_CURRENT_SOURCE_DIR}/test/check_size.cmake)
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if(DEFINED TSB_DEVICE)
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add_test(NAME ${name}.protocol
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COMMAND ${Python3_EXECUTABLE} ${CMAKE_CURRENT_SOURCE_DIR}/test/tsbtest.py
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${TSB_DEVICE} $<TARGET_FILE:${name}> ${base_hex})
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endif()
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endif()
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endfunction()
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# The tsb tiers reimplement the ATmega328P-only reference protocol; the other
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# chips build pureboot alone.
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if(LIBAVR_MCU STREQUAL "atmega328p")
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add_tsb_variant(tsb_asm 512)
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add_tsb_variant(tsb_policy 1024)
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add_tsb_variant(tsb_pure 1024)
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add_tsb_variant(tsb_tricks 1024)
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# The policy tier's floor is measured with the loop flags pureboot's size
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# work found (a loader's loop bodies all contain calls); the other tiers
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# keep the flag set their recorded floors were measured with — none.
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target_compile_options(tsb_policy PRIVATE -fno-move-loop-invariants -fno-tree-ter)
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endif()
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# pureboot — the pure-constraint port (see pureboot/README.md): one source,
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# no inline assembly, no global register variables, every libavr chip,
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# fitting each chip's smallest boot sector. The geometry and the
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# pureboot_add_loader() deployment function live in pureboot/CMakeLists.txt —
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# the unit a downstream project consumes; everything below is this port's
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# own build: the stock loaders, their tests, and the size matrix. The
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# distinct binary dir keeps the `pureboot` target's output name free.
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add_subdirectory(pureboot pureboot-cmake)
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# The stock loader: the family-default deployment (crystal/RC clock, the
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# chip's natural link, default pins). The activation window stays a cache
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# variable — re-timing a deployed loader is a self-update with a re-timed
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# build. pureboot9 is that re-timed build, and what the update test installs.
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set(PUREBOOT_TIMEOUT 8 CACHE STRING "pureboot activation window, seconds")
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pureboot_add_loader(pureboot TIMEOUT ${PUREBOOT_TIMEOUT})
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if(PROJECT_IS_TOP_LEVEL)
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get_target_property(_pb_stock_hz pureboot PUREBOOT_HZ)
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get_target_property(_pb_stock_baud pureboot PUREBOOT_BAUD)
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add_test(NAME pureboot.size
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COMMAND ${CMAKE_COMMAND} -DSIZE_TOOL=${CMAKE_SIZE} -DELF=$<TARGET_FILE:pureboot>
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-DLIMIT=${PUREBOOT_LIMIT} -P ${CMAKE_CURRENT_SOURCE_DIR}/test/check_size.cmake)
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if(Python3_FOUND)
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add_test(NAME pureboot.pi
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COMMAND ${Python3_EXECUTABLE} ${CMAKE_CURRENT_SOURCE_DIR}/test/check_pi.py
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${CMAKE_OBJDUMP} ${CMAKE_OBJCOPY} ${CMAKE_CXX_COMPILER} ${LIBAVR_MCU}
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$<TARGET_FILE:pureboot>
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${CMAKE_BINARY_DIR}/CMakeFiles/pureboot.dir/pureboot/pureboot.cpp.obj
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${PUREBOOT_BASE_HEX})
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add_test(NAME pureboot.planner
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COMMAND ${Python3_EXECUTABLE} ${CMAKE_CURRENT_SOURCE_DIR}/test/test_planner.py
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${CMAKE_CURRENT_SOURCE_DIR}/pureboot/pureboot.py)
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add_test(NAME pureboot.scan
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COMMAND ${Python3_EXECUTABLE} ${CMAKE_CURRENT_SOURCE_DIR}/test/test_scan.py
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${CMAKE_CURRENT_SOURCE_DIR}/pureboot/pureboot.py)
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# CMakePresets.json is generated; hand edits drift the moment the
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# generator reruns, so the gate holds the pair together.
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add_test(NAME presets.generated
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COMMAND ${Python3_EXECUTABLE} ${CMAKE_CURRENT_SOURCE_DIR}/tools/make_presets.py
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--check)
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add_test(NAME pureboot.handshake
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COMMAND ${Python3_EXECUTABLE} ${CMAKE_CURRENT_SOURCE_DIR}/test/test_handshake.py)
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add_test(NAME pureboot.updatelink
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COMMAND ${Python3_EXECUTABLE} ${CMAKE_CURRENT_SOURCE_DIR}/test/test_update_link.py)
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endif()
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# The protocol test flashes this fixture through the loader with the real
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# host tool and expects its banner after the hand-over; a normally linked
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# application whose reset vector is what the tinies' surgery re-homes.
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if(DEFINED PB_DEVICE)
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add_executable(pbapp test/pbapp.cpp)
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target_link_libraries(pbapp PRIVATE libavr)
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add_custom_command(TARGET pbapp POST_BUILD
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COMMAND ${CMAKE_OBJCOPY} -O binary $<TARGET_FILE:pbapp> $<TARGET_FILE:pbapp>.bin)
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add_test(NAME pureboot.protocol
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COMMAND ${Python3_EXECUTABLE} ${CMAKE_CURRENT_SOURCE_DIR}/test/pbtest.py
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${PB_DEVICE} $<TARGET_FILE:pureboot> ${PUREBOOT_SIM_MCU} ${_pb_stock_hz}
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${PUREBOOT_BASE_HEX} ${PUREBOOT_PAGE} ${_pb_stock_baud} ${PUREBOOT_EEPROM}
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$<TARGET_FILE:pbapp>.bin ${CMAKE_CURRENT_SOURCE_DIR}/pureboot/pureboot.py
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${CMAKE_BINARY_DIR}/pbtest-work)
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set_tests_properties(pureboot.protocol PROPERTIES TIMEOUT 180)
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# The activation window as a measured duration: application installed,
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# line idle, the first transmit is the application's banner — its
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# cycle is the window the source declares, held to ±2 % (one
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# mis-counted cycle per poll is a 10 % shift).
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add_test(NAME pureboot.window
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COMMAND ${Python3_EXECUTABLE} ${CMAKE_CURRENT_SOURCE_DIR}/test/pbwindow.py
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--device ${PB_DEVICE} --loader $<TARGET_FILE:pureboot>
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--mcu ${PUREBOOT_SIM_MCU} --hz ${_pb_stock_hz}
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--base ${PUREBOOT_BASE_HEX} --page ${PUREBOOT_PAGE}
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--baud ${_pb_stock_baud} --app $<TARGET_FILE:pbapp>.bin
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--seconds ${PUREBOOT_TIMEOUT}
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--tool ${CMAKE_CURRENT_SOURCE_DIR}/pureboot/pureboot.py
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--workdir ${CMAKE_BINARY_DIR}/pbwindow-work)
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set_tests_properties(pureboot.window PROPERTIES TIMEOUT 300)
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# The half-duplex loader's window, same gate: its poll runs through
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# rx_ready()'s release-line test, whose outlined call re-shapes the
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# whole loop — a per-class cycle count (poll_cost() in pureboot.cpp)
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# that only the built image can prove, chip by chip.
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if(PUREBOOT_HAS_USART)
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add_test(NAME pureboot.window.halfduplex
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COMMAND ${Python3_EXECUTABLE} ${CMAKE_CURRENT_SOURCE_DIR}/test/pbwindow.py
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--device ${PB_DEVICE} --loader $<TARGET_FILE:pureboot_hd>
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--mcu ${PUREBOOT_SIM_MCU} --hz ${_pb_stock_hz}
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--base ${PUREBOOT_BASE_HEX} --page ${PUREBOOT_PAGE}
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--baud ${_pb_stock_baud} --app $<TARGET_FILE:pbapp>.bin
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--seconds ${PUREBOOT_TIMEOUT}
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--tool ${CMAKE_CURRENT_SOURCE_DIR}/pureboot/pureboot.py
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--workdir ${CMAKE_BINARY_DIR}/pbwindow-hd-work)
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set_tests_properties(pureboot.window.halfduplex PROPERTIES TIMEOUT 300)
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endif()
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# The position-independence acceptance test: the identical image,
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# installed one slot lower, must serve the full command set.
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add_test(NAME pureboot.reloc
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COMMAND ${Python3_EXECUTABLE} ${CMAKE_CURRENT_SOURCE_DIR}/test/pbreloc.py
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${PB_DEVICE} $<TARGET_FILE:pureboot> ${PUREBOOT_SIM_MCU} ${_pb_stock_hz}
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${PUREBOOT_BASE_HEX} ${PUREBOOT_PAGE} ${_pb_stock_baud}
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${CMAKE_CURRENT_SOURCE_DIR}/pureboot/pureboot.py
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${CMAKE_BINARY_DIR}/pbreloc-work)
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set_tests_properties(pureboot.reloc PROPERTIES TIMEOUT 180
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ENVIRONMENT "PB_OBJCOPY=${CMAKE_OBJCOPY}")
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# Entering the loader from a running application with no reset
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# between, over a page buffer the application dirtied — the case the
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# loader declines to guard and the host repairs. Hardware forbids the
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# state here (SPM runs only from the boot section); simavr does not,
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# which is what makes it constructible.
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if(LIBAVR_MCU STREQUAL "atmega328p")
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add_test(NAME pureboot.dirty
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COMMAND ${Python3_EXECUTABLE} ${CMAKE_CURRENT_SOURCE_DIR}/test/pbdirty.py
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${PB_DEVICE} $<TARGET_FILE:pureboot> ${PUREBOOT_SIM_MCU} ${_pb_stock_hz}
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${PUREBOOT_BASE_HEX} ${PUREBOOT_PAGE} ${_pb_stock_baud}
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$<TARGET_FILE:pbapp>.bin
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${CMAKE_CURRENT_SOURCE_DIR}/pureboot/pureboot.py
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${CMAKE_BINARY_DIR}/pbdirty-work)
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set_tests_properties(pureboot.dirty PROPERTIES TIMEOUT 180)
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endif()
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# Re-homing: a loader mistakenly programmed at address 0 (a raw .bin
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# handed to a programmer) or sitting in the staging slot must heal
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# into the canonical slot through the ordinary --update-loader flow.
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# Patched-vector behavior, so one representative chip carries it.
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if(LIBAVR_MCU STREQUAL "attiny85")
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add_test(NAME pureboot.rehome
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COMMAND ${Python3_EXECUTABLE} ${CMAKE_CURRENT_SOURCE_DIR}/test/pbrehome.py
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${PB_DEVICE} $<TARGET_FILE:pureboot> $<TARGET_FILE:pureboot9>.bin
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${PUREBOOT_SIM_MCU} ${_pb_stock_hz} ${PUREBOOT_BASE_HEX} ${PUREBOOT_PAGE}
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${_pb_stock_baud} $<TARGET_FILE:pbapp>.bin
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${CMAKE_CURRENT_SOURCE_DIR}/pureboot/pureboot.py
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${CMAKE_BINARY_DIR}/pbrehome-work)
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set_tests_properties(pureboot.rehome PROPERTIES TIMEOUT 180)
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endif()
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# The self-update end-to-end: the re-timed build (same source, only
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# the timeout differs — a byte-different image) replaces the resident
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# through --update-loader, with every power-fail phase rehearsed from
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# the runner's flash dumps.
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pureboot_add_loader(pureboot9 TIMEOUT 9)
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add_test(NAME pureboot.update
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COMMAND ${Python3_EXECUTABLE} ${CMAKE_CURRENT_SOURCE_DIR}/test/pbupdate.py
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${PB_DEVICE} $<TARGET_FILE:pureboot> $<TARGET_FILE:pureboot9>
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${PUREBOOT_SIM_MCU} ${_pb_stock_hz} ${PUREBOOT_BASE_HEX} ${PUREBOOT_PAGE}
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${_pb_stock_baud} $<TARGET_FILE:pbapp>.bin
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${CMAKE_CURRENT_SOURCE_DIR}/pureboot/pureboot.py
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${CMAKE_BINARY_DIR}/pbupdate-work)
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set_tests_properties(pureboot.update PROPERTIES TIMEOUT 600
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ENVIRONMENT "PB_OBJCOPY=${CMAKE_OBJCOPY}")
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endif()
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# The size matrix: every configuration axis that could move the image
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# size — the serial backend (different code), the USART instance
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# (different registers), the clock (different constants), the baud
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# through the shapes its bit timing takes, and the pins through the one
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# thing they decide (whether a bit-banged link has to release the USART
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# that owns them) — each combination must still fit the chip's slot
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# budget. The timeout is a constant and adds no axis. The stock build is
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# one point of this matrix and already has its test.
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function(pureboot_size_variant name)
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pureboot_add_loader(${name} ${ARGN})
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add_test(NAME ${name}.size
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COMMAND ${CMAKE_COMMAND} -DSIZE_TOOL=${CMAKE_SIZE} -DELF=$<TARGET_FILE:${name}>
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-DLIMIT=${PUREBOOT_LIMIT} -P ${CMAKE_CURRENT_SOURCE_DIR}/test/check_size.cmake)
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endfunction()
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# The autobaud loader: one clock-agnostic image per chip, so it has no
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# clock x baud axis of its own — the matrix below sweeps those for the
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# fixed-baud builds, and this one binary has to serve all of them at run
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# time. Size-tested against the same per-chip budget as every other variant.
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pureboot_add_loader(pureboot_autobaud SERIAL autobaud)
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add_test(NAME pureboot_autobaud.size
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COMMAND ${CMAKE_COMMAND} -DSIZE_TOOL=${CMAKE_SIZE} -DELF=$<TARGET_FILE:pureboot_autobaud>
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-DLIMIT=${PUREBOOT_LIMIT} -P ${CMAKE_CURRENT_SOURCE_DIR}/test/check_size.cmake)
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# The measured unit's home is wire contract, not layout accident: the
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# host reads the bit period from it (--info's measured clock). In the
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# GPIOR home the image must carry no RAM copy at all; in the RAM home it
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# is the loader's only RAM object, at the very start of SRAM.
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add_test(NAME pureboot_autobaud.unit
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COMMAND ${CMAKE_COMMAND} -DOBJDUMP=${CMAKE_OBJDUMP} -DELF=$<TARGET_FILE:pureboot_autobaud>
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-DRAM_START=${PUREBOOT_RAM_START} -DGPIOR=${PUREBOOT_UNIT_GPIOR}
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-P ${CMAKE_CURRENT_SOURCE_DIR}/test/check_unit.cmake)
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# One point of the exhaustive matrix, named from its resolved parameters
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# so the enumeration cannot collide with itself. `pins` is empty for the
|
|
# default pair, or the index of the USART whose own pins a bit-banged
|
|
# link sits on. Unreachable rates drop out here rather than aborting the
|
|
# configure.
|
|
# The optional trailing argument is the one-wire shape of the same link:
|
|
# ONE_WIRE folds a software point onto its RX pin (the default, or the
|
|
# named USART's RXD), HALF_DUPLEX is the hardware USART's turn-around.
|
|
function(pureboot_matrix_point hz baud link pins)
|
|
set(_name pbm_${hz}_${baud}_${link})
|
|
if(link STREQUAL "software")
|
|
pureboot_baud_feasible(${hz} ${baud} 1 _ok)
|
|
set(_args SERIAL software)
|
|
if(NOT pins STREQUAL "")
|
|
list(APPEND _args RX ${PUREBOOT_USART${pins}_RX} TX ${PUREBOOT_USART${pins}_TX})
|
|
set(_name ${_name}_on${pins})
|
|
endif()
|
|
if(ARGC GREATER 4 AND ARGV4 STREQUAL "ONE_WIRE")
|
|
if(NOT pins STREQUAL "")
|
|
set(_args SERIAL software RX ${PUREBOOT_USART${pins}_RX} TX ${PUREBOOT_USART${pins}_RX})
|
|
else()
|
|
list(APPEND _args RX pb0 TX pb0)
|
|
endif()
|
|
set(_name ${_name}_1w)
|
|
endif()
|
|
else()
|
|
pureboot_baud_feasible(${hz} ${baud} 0 _ok)
|
|
set(_args USART ${link})
|
|
if(ARGC GREATER 4 AND ARGV4 STREQUAL "HALF_DUPLEX")
|
|
list(APPEND _args HALF_DUPLEX)
|
|
set(_name ${_name}_hd)
|
|
endif()
|
|
endif()
|
|
if(_ok)
|
|
pureboot_size_variant(${_name} CLOCK ${hz} BAUD ${baud} ${_args})
|
|
endif()
|
|
endfunction()
|
|
|
|
# Clock points: the shipped-fuse floor (CKDIV8), the calibrated RC, and
|
|
# the crystal the stock build assumes (the tiny13's ladder is its own RC
|
|
# menu — it has no crystal option).
|
|
if(LIBAVR_MCU MATCHES "^attiny13")
|
|
set(_matrix_clocks 1200000 4800000 9600000)
|
|
set(_full_clocks 128000 600000 1200000 4800000 9600000)
|
|
else()
|
|
set(_matrix_clocks 1000000 8000000 16000000)
|
|
set(_full_clocks 128000 1000000 1843200 2000000 3686400 4000000 7372800 8000000
|
|
11059200 12000000 14745600 16000000 18432000 20000000)
|
|
endif()
|
|
|
|
# The exhaustive cross product: every clock a deployment plausibly runs
|
|
# — the internal oscillators, the shipped CKDIV8 floor, the plain
|
|
# crystals and the UART crystals — against every rate, against every
|
|
# backend. Beyond the ladder the list carries the slow rates a
|
|
# sub-megahertz oscillator is left with, which no ladder rate reaches
|
|
# (16000 Bd is the only rate the 128 kHz oscillator holds exactly); at
|
|
# the fast clocks those same rates also select the software UART's
|
|
# 16-bit _delay_loop_2 bit spin (two words more setup at each of its five
|
|
# sites), the largest image the space produces and a shape the ladder
|
|
# default — always the *fastest* rate a clock reaches — never picks.
|
|
#
|
|
# Every chip runs the full cross product: the size-bearing classes (flash
|
|
# addressing, hand-over shape, page size, USART inventory) are what make
|
|
# the image differ, and a chip outside them is expected to match its class
|
|
# — but "expected" is what a matrix is for, and the whole sweep is cheap
|
|
# enough to run rather than reason about. PUREBOOT_FULL_MATRIX is what
|
|
# selects it; the compact matrix below is the per-commit default.
|
|
get_property(_full_bauds GLOBAL PROPERTY PUREBOOT_BAUD_LADDER)
|
|
list(APPEND _full_bauds 16000 4800 2400 1200)
|
|
if(DEFINED ENV{PUREBOOT_FULL_MATRIX})
|
|
foreach(_matrix_hz IN LISTS _full_clocks)
|
|
foreach(_matrix_baud IN LISTS _full_bauds)
|
|
pureboot_matrix_point(${_matrix_hz} ${_matrix_baud} software "")
|
|
pureboot_matrix_point(${_matrix_hz} ${_matrix_baud} software "" ONE_WIRE)
|
|
if(PUREBOOT_HAS_USART)
|
|
pureboot_matrix_point(${_matrix_hz} ${_matrix_baud} software 0)
|
|
pureboot_matrix_point(${_matrix_hz} ${_matrix_baud} software 0 ONE_WIRE)
|
|
pureboot_matrix_point(${_matrix_hz} ${_matrix_baud} 0 "")
|
|
pureboot_matrix_point(${_matrix_hz} ${_matrix_baud} 0 "" HALF_DUPLEX)
|
|
endif()
|
|
if(PUREBOOT_HAS_USART1)
|
|
pureboot_matrix_point(${_matrix_hz} ${_matrix_baud} software 1)
|
|
pureboot_matrix_point(${_matrix_hz} ${_matrix_baud} software 1 ONE_WIRE)
|
|
pureboot_matrix_point(${_matrix_hz} ${_matrix_baud} 1 "")
|
|
pureboot_matrix_point(${_matrix_hz} ${_matrix_baud} 1 "" HALF_DUPLEX)
|
|
endif()
|
|
endforeach()
|
|
endforeach()
|
|
else()
|
|
foreach(_matrix_hz IN LISTS _matrix_clocks)
|
|
math(EXPR _matrix_khz "${_matrix_hz} / 1000")
|
|
if(PUREBOOT_HAS_USART OR NOT _matrix_hz EQUAL _pb_stock_hz)
|
|
pureboot_size_variant(pureboot_sw_${_matrix_khz}k CLOCK ${_matrix_hz} SERIAL software)
|
|
endif()
|
|
if(PUREBOOT_HAS_USART AND NOT _matrix_hz EQUAL _pb_stock_hz)
|
|
pureboot_size_variant(pureboot_hw_${_matrix_khz}k CLOCK ${_matrix_hz} SERIAL hardware)
|
|
endif()
|
|
if(PUREBOOT_HAS_USART1 AND NOT _matrix_hz EQUAL _pb_stock_hz)
|
|
pureboot_size_variant(pureboot_usart1_${_matrix_khz}k CLOCK ${_matrix_hz} USART 1)
|
|
endif()
|
|
endforeach()
|
|
list(GET _matrix_clocks -1 _matrix_top_hz)
|
|
pureboot_size_variant(pureboot_sw_wide CLOCK ${_matrix_top_hz} BAUD 9600 SERIAL software)
|
|
# The pin axis at the widest software image — the slowest ladder rate
|
|
# against the fastest clock, whose bit spin needs the 16-bit delay
|
|
# loop — with the USART release on top of it. The exhaustive sweep
|
|
# above carries the same axis across its whole cross product.
|
|
if(PUREBOOT_HAS_USART)
|
|
pureboot_size_variant(pureboot_sw_wide_on_usart0 CLOCK ${_matrix_top_hz} BAUD 9600
|
|
SERIAL software RX ${PUREBOOT_USART0_RX} TX ${PUREBOOT_USART0_TX})
|
|
endif()
|
|
if(PUREBOOT_HAS_USART1)
|
|
pureboot_size_variant(pureboot_sw_wide_on_usart1 CLOCK ${_matrix_top_hz} BAUD 9600
|
|
SERIAL software RX ${PUREBOOT_USART1_RX} TX ${PUREBOOT_USART1_TX})
|
|
endif()
|
|
endif()
|
|
if(PUREBOOT_HAS_USART1)
|
|
pureboot_size_variant(pureboot_usart1 USART 1)
|
|
endif()
|
|
|
|
# The pin axis at its fixed points, in both matrix modes. The autobaud
|
|
# loader carries no clock and no baud, so the sweep has nothing to vary
|
|
# for it — yet it is the tightest image in the space, and on a USART's
|
|
# own pins it pays the release too: that combination is the one that
|
|
# overflowed the 1284's slot. The software build on those pins is the
|
|
# same deployment the mute test drives.
|
|
if(PUREBOOT_HAS_USART)
|
|
pureboot_size_variant(pureboot_sw_on_usart0 SERIAL software
|
|
RX ${PUREBOOT_USART0_RX} TX ${PUREBOOT_USART0_TX})
|
|
pureboot_size_variant(pureboot_autobaud_on_usart0 SERIAL autobaud
|
|
RX ${PUREBOOT_USART0_RX} TX ${PUREBOOT_USART0_TX})
|
|
endif()
|
|
if(PUREBOOT_HAS_USART1)
|
|
pureboot_size_variant(pureboot_sw_on_usart1 SERIAL software
|
|
RX ${PUREBOOT_USART1_RX} TX ${PUREBOOT_USART1_TX})
|
|
pureboot_size_variant(pureboot_autobaud_on_usart1 SERIAL autobaud
|
|
RX ${PUREBOOT_USART1_RX} TX ${PUREBOOT_USART1_TX})
|
|
endif()
|
|
|
|
# The OSCCAL axis at its fixed points: the stock shape, and the tightest
|
|
# image in the space with the trim on top — the axis adds one register
|
|
# write, and these points hold both of its addressing encodings to every
|
|
# chip's budget.
|
|
pureboot_size_variant(pureboot_osccal OSCCAL 0x9c)
|
|
pureboot_size_variant(pureboot_autobaud_osccal SERIAL autobaud OSCCAL 0x9c)
|
|
if(PUREBOOT_HAS_USART)
|
|
pureboot_size_variant(pureboot_autobaud_osccal_on_usart0 SERIAL autobaud OSCCAL 0x9c
|
|
RX ${PUREBOOT_USART0_RX} TX ${PUREBOOT_USART0_TX})
|
|
endif()
|
|
|
|
# The one-wire axis at its fixed points, in both matrix modes (the
|
|
# exhaustive sweep carries the same shapes across its cross product):
|
|
# the software link folded onto one pin, the tightest autobaud image
|
|
# likewise — on the default pin and on the USART's own RXD, whose
|
|
# release the now-driven shared pin needs where a receive-only link
|
|
# would not — and the hardware USART's half-duplex turn-around, stock
|
|
# and at the widest fixed-baud shape.
|
|
# The two spellings deliberately split across the two points: HALF_DUPLEX
|
|
# folds TX onto RX, RX == TX states the same thing directly.
|
|
pureboot_size_variant(pureboot_1w SERIAL software RX pb0 HALF_DUPLEX)
|
|
pureboot_size_variant(pureboot_1w_autobaud_osccal SERIAL autobaud OSCCAL 0x9c RX pb0 TX pb0)
|
|
if(PUREBOOT_HAS_USART)
|
|
pureboot_size_variant(pureboot_1w_on_usart0 SERIAL software
|
|
RX ${PUREBOOT_USART0_RX} TX ${PUREBOOT_USART0_RX})
|
|
pureboot_size_variant(pureboot_1w_autobaud_osccal_on_usart0 SERIAL autobaud OSCCAL 0x9c
|
|
RX ${PUREBOOT_USART0_RX} TX ${PUREBOOT_USART0_RX})
|
|
pureboot_size_variant(pureboot_hd HALF_DUPLEX)
|
|
list(GET _matrix_clocks -1 _hd_top_hz)
|
|
pureboot_size_variant(pureboot_hd_wide CLOCK ${_hd_top_hz} BAUD 9600 HALF_DUPLEX)
|
|
endif()
|
|
if(PUREBOOT_HAS_USART1)
|
|
pureboot_size_variant(pureboot_usart1_hd USART 1 HALF_DUPLEX)
|
|
endif()
|
|
|
|
# The trim byte, observed through the wire from the first prompt — one
|
|
# chip per OSCCAL addressing class: extended I/O on the 328P (data 0x66,
|
|
# an sts — DS40002061B §36), plain I/O on the 85 (data 0x51, an out —
|
|
# Atmel-2586 §21).
|
|
if(LIBAVR_MCU MATCHES "^(atmega328p|attiny85)$" AND DEFINED PB_DEVICE)
|
|
if(LIBAVR_MCU STREQUAL "atmega328p")
|
|
set(_osccal_addr 0x66)
|
|
else()
|
|
set(_osccal_addr 0x51)
|
|
endif()
|
|
get_target_property(_osccal_hz pureboot_osccal PUREBOOT_HZ)
|
|
get_target_property(_osccal_baud pureboot_osccal PUREBOOT_BAUD)
|
|
add_test(NAME pureboot.osccal
|
|
COMMAND ${Python3_EXECUTABLE} ${CMAKE_CURRENT_SOURCE_DIR}/test/pbosccal.py
|
|
${PB_DEVICE} $<TARGET_FILE:pureboot_osccal> ${PUREBOOT_SIM_MCU}
|
|
${_osccal_hz} ${PUREBOOT_BASE_HEX} ${PUREBOOT_PAGE} ${_osccal_baud}
|
|
${_osccal_addr} 0x9c ${CMAKE_CURRENT_SOURCE_DIR}/pureboot/pureboot.py
|
|
${CMAKE_BINARY_DIR}/pbosccal-work)
|
|
set_tests_properties(pureboot.osccal PROPERTIES TIMEOUT 120)
|
|
endif()
|
|
|
|
# One configured deployment end to end — a real board's shape rather
|
|
# than the stock assumption: the ATmega328P on its shipped 1 MHz fuses,
|
|
# the software UART on hand-picked pins (TX = PB1, RX = PB5), the ladder
|
|
# baud (9600). The full protocol suite runs against it, fixture
|
|
# application included, over the runner's GPIO bridge — proving the
|
|
# configuration plumbing produces a working loader, not just one that
|
|
# fits.
|
|
if(LIBAVR_MCU STREQUAL "atmega328p" AND DEFINED PB_DEVICE)
|
|
pureboot_size_variant(pureboot_custom CLOCK 1000000 SERIAL software RX pb5 TX pb1)
|
|
get_target_property(_custom_hz pureboot_custom PUREBOOT_HZ)
|
|
get_target_property(_custom_baud pureboot_custom PUREBOOT_BAUD)
|
|
get_target_property(_custom_link pureboot_custom PUREBOOT_LINK)
|
|
add_executable(pbapp_custom test/pbapp.cpp)
|
|
target_link_libraries(pbapp_custom PRIVATE libavr)
|
|
target_compile_definitions(pbapp_custom PRIVATE PUREBOOT_CLOCK_HZ=${_custom_hz}
|
|
PUREBOOT_BAUD=${_custom_baud} PUREBOOT_SOFT_SERIAL PUREBOOT_TX=pb1)
|
|
add_custom_command(TARGET pbapp_custom POST_BUILD
|
|
COMMAND ${CMAKE_OBJCOPY} -O binary
|
|
$<TARGET_FILE:pbapp_custom> $<TARGET_FILE:pbapp_custom>.bin)
|
|
add_test(NAME pureboot.custom
|
|
COMMAND ${Python3_EXECUTABLE} ${CMAKE_CURRENT_SOURCE_DIR}/test/pbtest.py
|
|
${PB_DEVICE} $<TARGET_FILE:pureboot_custom> ${PUREBOOT_SIM_MCU} ${_custom_hz}
|
|
${PUREBOOT_BASE_HEX} ${PUREBOOT_PAGE} ${_custom_baud} ${PUREBOOT_EEPROM}
|
|
$<TARGET_FILE:pbapp_custom>.bin ${CMAKE_CURRENT_SOURCE_DIR}/pureboot/pureboot.py
|
|
${CMAKE_BINARY_DIR}/pbcustom-work ${_custom_link})
|
|
set_tests_properties(pureboot.custom PROPERTIES TIMEOUT 180)
|
|
endif()
|
|
|
|
# Hand-over with the USART that owns the loader's pins left enabled — the
|
|
# state an application reaches by jumping in without a reset, and the one
|
|
# that made a bit-banged loader on PD0/PD1 (where the Uno's USB bridge
|
|
# lands) receive and obey while answering nothing. Run where it was found
|
|
# on silicon; the runner supplies the pin ownership simavr has no model
|
|
# for, which is what lets this fail when the release is gone.
|
|
if(LIBAVR_MCU STREQUAL "atmega328p" AND DEFINED PB_DEVICE)
|
|
get_target_property(_mute_hz pureboot_sw_on_usart0 PUREBOOT_HZ)
|
|
get_target_property(_mute_baud pureboot_sw_on_usart0 PUREBOOT_BAUD)
|
|
get_target_property(_mute_link pureboot_sw_on_usart0 PUREBOOT_LINK)
|
|
add_executable(pbapp_handover test/pbapp.cpp)
|
|
target_link_libraries(pbapp_handover PRIVATE libavr)
|
|
target_compile_definitions(pbapp_handover PRIVATE PUREBOOT_CLOCK_HZ=${_mute_hz}
|
|
PUREBOOT_BAUD=${_mute_baud} PUREBOOT_HANDOVER)
|
|
add_custom_command(TARGET pbapp_handover POST_BUILD
|
|
COMMAND ${CMAKE_OBJCOPY} -O binary
|
|
$<TARGET_FILE:pbapp_handover> $<TARGET_FILE:pbapp_handover>.bin)
|
|
add_test(NAME pureboot.mute
|
|
COMMAND ${Python3_EXECUTABLE} ${CMAKE_CURRENT_SOURCE_DIR}/test/pbmute.py
|
|
${PB_DEVICE} $<TARGET_FILE:pureboot_sw_on_usart0> ${PUREBOOT_SIM_MCU} ${_mute_hz}
|
|
${PUREBOOT_BASE_HEX} ${PUREBOOT_PAGE} ${_mute_baud}
|
|
$<TARGET_FILE:pbapp_handover>.bin
|
|
${CMAKE_CURRENT_SOURCE_DIR}/pureboot/pureboot.py
|
|
${CMAKE_BINARY_DIR}/pbmute-work ${_mute_link})
|
|
set_tests_properties(pureboot.mute PROPERTIES TIMEOUT 180)
|
|
|
|
# The same hand-over against the one-wire deployment on that USART's
|
|
# RXD: RXEN forces the shared pin's direction, so a loader that only
|
|
# released the transmit-side hold would read the wire and answer into
|
|
# a pin it cannot drive. The host runs with the --one-wire echo
|
|
# discard, which the bridge's shared-line model feeds for real.
|
|
get_target_property(_mute1w_link pureboot_1w_on_usart0 PUREBOOT_LINK)
|
|
add_test(NAME pureboot.mute.onewire
|
|
COMMAND ${Python3_EXECUTABLE} ${CMAKE_CURRENT_SOURCE_DIR}/test/pbmute.py
|
|
${PB_DEVICE} $<TARGET_FILE:pureboot_1w_on_usart0> ${PUREBOOT_SIM_MCU} ${_mute_hz}
|
|
${PUREBOOT_BASE_HEX} ${PUREBOOT_PAGE} ${_mute_baud}
|
|
$<TARGET_FILE:pbapp_handover>.bin
|
|
${CMAKE_CURRENT_SOURCE_DIR}/pureboot/pureboot.py
|
|
${CMAKE_BINARY_DIR}/pbmute-1w-work ${_mute1w_link})
|
|
set_tests_properties(pureboot.mute.onewire PROPERTIES TIMEOUT 180)
|
|
|
|
# The full protocol suite over one shared pin: the loader folded onto
|
|
# PB0, the bridge following the pin's direction, the fixture
|
|
# bannering as a guest on the same line, and the host discarding its
|
|
# own echo throughout.
|
|
get_target_property(_1w_hz pureboot_1w PUREBOOT_HZ)
|
|
get_target_property(_1w_baud pureboot_1w PUREBOOT_BAUD)
|
|
get_target_property(_1w_link pureboot_1w PUREBOOT_LINK)
|
|
add_executable(pbapp_1w test/pbapp.cpp)
|
|
target_link_libraries(pbapp_1w PRIVATE libavr)
|
|
target_compile_definitions(pbapp_1w PRIVATE PUREBOOT_CLOCK_HZ=${_1w_hz}
|
|
PUREBOOT_BAUD=${_1w_baud} PUREBOOT_SOFT_SERIAL
|
|
PUREBOOT_RX=pb0 PUREBOOT_TX=pb0)
|
|
add_custom_command(TARGET pbapp_1w POST_BUILD
|
|
COMMAND ${CMAKE_OBJCOPY} -O binary
|
|
$<TARGET_FILE:pbapp_1w> $<TARGET_FILE:pbapp_1w>.bin)
|
|
add_test(NAME pureboot.onewire
|
|
COMMAND ${Python3_EXECUTABLE} ${CMAKE_CURRENT_SOURCE_DIR}/test/pbtest.py
|
|
${PB_DEVICE} $<TARGET_FILE:pureboot_1w> ${PUREBOOT_SIM_MCU} ${_1w_hz}
|
|
${PUREBOOT_BASE_HEX} ${PUREBOOT_PAGE} ${_1w_baud} ${PUREBOOT_EEPROM}
|
|
$<TARGET_FILE:pbapp_1w>.bin ${CMAKE_CURRENT_SOURCE_DIR}/pureboot/pureboot.py
|
|
${CMAKE_BINARY_DIR}/pb1w-work ${_1w_link})
|
|
set_tests_properties(pureboot.onewire PROPERTIES TIMEOUT 180)
|
|
|
|
# The hardware USART's half-duplex turn-around, end to end: every
|
|
# reply byte runs drive-line, TXC-hold, release — against simavr's
|
|
# RXEN-gated receiver, which drops input to a disabled receiver the
|
|
# way silicon does. The pty is a two-wire transport, so the host
|
|
# needs no echo discard here; the off-chip tie itself is the
|
|
# hardware bench's item.
|
|
add_test(NAME pureboot.halfduplex
|
|
COMMAND ${Python3_EXECUTABLE} ${CMAKE_CURRENT_SOURCE_DIR}/test/pbtest.py
|
|
${PB_DEVICE} $<TARGET_FILE:pureboot_hd> ${PUREBOOT_SIM_MCU} ${_pb_stock_hz}
|
|
${PUREBOOT_BASE_HEX} ${PUREBOOT_PAGE} ${_pb_stock_baud} ${PUREBOOT_EEPROM}
|
|
$<TARGET_FILE:pbapp>.bin ${CMAKE_CURRENT_SOURCE_DIR}/pureboot/pureboot.py
|
|
${CMAKE_BINARY_DIR}/pbhd-work)
|
|
set_tests_properties(pureboot.halfduplex PROPERTIES TIMEOUT 180)
|
|
endif()
|
|
|
|
# The second USART, driven for real on one chip: instance selection is
|
|
# compile-checked everywhere, but only a live session proves the loader
|
|
# initialized and polls the USART it claims to. The fixture application
|
|
# banners on the same instance.
|
|
if(LIBAVR_MCU STREQUAL "atmega644a" AND DEFINED PB_DEVICE)
|
|
get_target_property(_usart1_hz pureboot_usart1 PUREBOOT_HZ)
|
|
get_target_property(_usart1_baud pureboot_usart1 PUREBOOT_BAUD)
|
|
add_executable(pbapp_usart1 test/pbapp.cpp)
|
|
target_link_libraries(pbapp_usart1 PRIVATE libavr)
|
|
target_compile_definitions(pbapp_usart1 PRIVATE PUREBOOT_CLOCK_HZ=${_usart1_hz}
|
|
PUREBOOT_BAUD=${_usart1_baud} PUREBOOT_USART=1)
|
|
add_custom_command(TARGET pbapp_usart1 POST_BUILD
|
|
COMMAND ${CMAKE_OBJCOPY} -O binary
|
|
$<TARGET_FILE:pbapp_usart1> $<TARGET_FILE:pbapp_usart1>.bin)
|
|
add_test(NAME pureboot.usart1
|
|
COMMAND ${Python3_EXECUTABLE} ${CMAKE_CURRENT_SOURCE_DIR}/test/pbtest.py
|
|
${PB_DEVICE} $<TARGET_FILE:pureboot_usart1> ${PUREBOOT_SIM_MCU} ${_usart1_hz}
|
|
${PUREBOOT_BASE_HEX} ${PUREBOOT_PAGE} ${_usart1_baud} ${PUREBOOT_EEPROM}
|
|
$<TARGET_FILE:pbapp_usart1>.bin ${CMAKE_CURRENT_SOURCE_DIR}/pureboot/pureboot.py
|
|
${CMAKE_BINARY_DIR}/pbusart1-work usart1)
|
|
set_tests_properties(pureboot.usart1 PROPERTIES TIMEOUT 180)
|
|
endif()
|
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|
# The autobaud loader driven end to end over the software-UART bridge:
|
|
# the host sends the 0xC0 calibration pulse, the loader times it, locks,
|
|
# and programs. Run on the near-flash 328P
|
|
# and the word-addressed 1284P — the two flash-addressing classes — and each
|
|
# at two clocks with the one binary, which is the clock-agnostic property
|
|
# autobaud exists for (test/pbautobaud.py). The fixture application banners
|
|
# over the same software link at the first clock's rate.
|
|
if(LIBAVR_MCU MATCHES "^atmega(328p|1284p)$" AND DEFINED PB_DEVICE)
|
|
add_executable(pbapp_autobaud test/pbapp.cpp)
|
|
target_link_libraries(pbapp_autobaud PRIVATE libavr)
|
|
target_compile_definitions(pbapp_autobaud PRIVATE PUREBOOT_CLOCK_HZ=1000000
|
|
PUREBOOT_BAUD=9600 PUREBOOT_SOFT_SERIAL PUREBOOT_TX=pb1)
|
|
add_custom_command(TARGET pbapp_autobaud POST_BUILD
|
|
COMMAND ${CMAKE_OBJCOPY} -O binary
|
|
$<TARGET_FILE:pbapp_autobaud> $<TARGET_FILE:pbapp_autobaud>.bin)
|
|
add_test(NAME pureboot.autobaud
|
|
COMMAND ${Python3_EXECUTABLE} ${CMAKE_CURRENT_SOURCE_DIR}/test/pbautobaud.py
|
|
${PB_DEVICE} $<TARGET_FILE:pureboot_autobaud> ${PUREBOOT_SIM_MCU}
|
|
${PUREBOOT_BASE_HEX} ${PUREBOOT_PAGE} $<TARGET_FILE:pbapp_autobaud>.bin
|
|
1000000 9600 ${CMAKE_CURRENT_SOURCE_DIR}/pureboot/pureboot.py
|
|
${CMAKE_BINARY_DIR}/pbautobaud-work)
|
|
set_tests_properties(pureboot.autobaud PROPERTIES TIMEOUT 240)
|
|
|
|
# The tightest deployment in the space, end to end: the autobaud
|
|
# loader folded onto the USART's own RXD with the OSCCAL trim baked
|
|
# — one-wire calibration, the receive-side release, and the host's
|
|
# echo discard, over the same two-clock sweep. One chip carries it;
|
|
# the shape is chip-independent.
|
|
if(LIBAVR_MCU STREQUAL "atmega328p")
|
|
get_target_property(_ab1w_link pureboot_1w_autobaud_osccal_on_usart0 PUREBOOT_LINK)
|
|
add_executable(pbapp_autobaud_1w test/pbapp.cpp)
|
|
target_link_libraries(pbapp_autobaud_1w PRIVATE libavr)
|
|
target_compile_definitions(pbapp_autobaud_1w PRIVATE PUREBOOT_CLOCK_HZ=1000000
|
|
PUREBOOT_BAUD=9600 PUREBOOT_SOFT_SERIAL
|
|
PUREBOOT_RX=pd0 PUREBOOT_TX=pd0)
|
|
add_custom_command(TARGET pbapp_autobaud_1w POST_BUILD
|
|
COMMAND ${CMAKE_OBJCOPY} -O binary
|
|
$<TARGET_FILE:pbapp_autobaud_1w> $<TARGET_FILE:pbapp_autobaud_1w>.bin)
|
|
add_test(NAME pureboot.autobaud.onewire
|
|
COMMAND ${Python3_EXECUTABLE} ${CMAKE_CURRENT_SOURCE_DIR}/test/pbautobaud.py
|
|
${PB_DEVICE} $<TARGET_FILE:pureboot_1w_autobaud_osccal_on_usart0>
|
|
${PUREBOOT_SIM_MCU} ${PUREBOOT_BASE_HEX} ${PUREBOOT_PAGE}
|
|
$<TARGET_FILE:pbapp_autobaud_1w>.bin
|
|
1000000 9600 ${CMAKE_CURRENT_SOURCE_DIR}/pureboot/pureboot.py
|
|
${CMAKE_BINARY_DIR}/pbautobaud-1w-work ${_ab1w_link})
|
|
set_tests_properties(pureboot.autobaud.onewire PROPERTIES TIMEOUT 240)
|
|
endif()
|
|
|
|
# The autobaud window: the calibration poll budget, at the measured
|
|
# 10 cycles a poll (pbwindow.py pins the constant the README's
|
|
# seconds arithmetic uses; the budget itself is the clock-free knob).
|
|
add_test(NAME pureboot.window.autobaud
|
|
COMMAND ${Python3_EXECUTABLE} ${CMAKE_CURRENT_SOURCE_DIR}/test/pbwindow.py
|
|
--device ${PB_DEVICE} --loader $<TARGET_FILE:pureboot_autobaud>
|
|
--mcu ${PUREBOOT_SIM_MCU} --hz 1000000
|
|
--base ${PUREBOOT_BASE_HEX} --page ${PUREBOOT_PAGE}
|
|
--baud 9600 --app $<TARGET_FILE:pbapp_autobaud>.bin
|
|
--autobaud-polls 4000000 --link sw
|
|
--tool ${CMAKE_CURRENT_SOURCE_DIR}/pureboot/pureboot.py
|
|
--workdir ${CMAKE_BINARY_DIR}/pbwindow-autobaud-work)
|
|
set_tests_properties(pureboot.window.autobaud PROPERTIES TIMEOUT 300)
|
|
endif()
|
|
endif()
|