The temporary page buffer is write-once per word, so a page filled over one an earlier writer left dirty programs the stale words. The same datasheet clause carries the cure: the buffer auto-erases after a page write (§26.2.1; §19.2 on the tinies), so the corruption clears itself by happening, and rewriting the page programs correctly. The loader therefore clears the buffer nowhere. The tinies' CTPB and the m48s' RWWSRE discard are gone; the boot-sectioned megas keep only the trailing RWWSRE they need anyway to re-enable the RWW section for read-back, which discards the buffer as a side effect and keeps them off the path entirely. 434 B on the tiny13s, 438-442 on the tiny25/45/85, 430 on the m48s; the megas are unchanged, the 1284s still 506. The host takes over the guarantee: a flash page that reads back wrong is rewritten up to RETRIES times before the run stops. Both read-back paths repair — verify_pages for programming, and write_differing, which is the loader-update path where a page left wrong is a half-written loader slot. That one is not hypothetical: deleting the discard made attiny85 pureboot.rehome fail deterministically there, the only flow still assuming the old contract. Protocol-visible, so README's W command says it: one W may program the wrong bytes after a refused page, or after an application that self-programmed entered without a reset, and a host that programs without reading back cannot trust it. Tests: pureboot.dirty drives the case the loader declines to guard — the fixture application dirties every buffer word and jumps in with no reset (hardware forbids that on a boot-sectioned mega, but simavr dispatches SPM from anywhere, which is what makes it constructible) — and asserts a bare verify sees the corruption, the repairing verify fixes it in one rewrite, and it stays fixed. pbreloc asserts the same shape after a refusal. test_planner covers the bound against a fake device: one bad write repaired in a single rewrite, a page that never comes good stopping after exactly three. Co-Authored-By: Claude Opus 4.8 (1M context) <noreply@anthropic.com>
497 lines
19 KiB
C++
497 lines
19 KiB
C++
// pureboot — a serial bootloader on libavr, pure by constraint: one C++
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// source with no inline assembly and no global register variables, built for
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// every chip libavr targets, 512 bytes on each. The device speaks primitives
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// — read/program flash, read/write EEPROM, fuse bytes, an info block, a jump
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// — and everything composite (verify, erase, reset-vector surgery, updating
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// the loader itself) lives in the host tool. Protocol reference: README.md
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// next to this file.
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//
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// The image is position-independent: control flow is PC-relative, the write
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// and read paths take wire addresses, the write guard refuses the 512-byte
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// slot the code is *running* in (taken from the runtime return address), the
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// info block is read relative to that same anchor, and the application jump
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// is an indirect call to an absolute entry. The identical binary therefore
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// runs from any 512-byte slot with every command intact: flashed one slot
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// below the resident loader it becomes the staging loader that rewrites the
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// resident — how pureboot updates itself, host-driven, with no other
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// firmware involved.
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//
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// Entry: reset lands in avr::startup::entry below (BOOTRST on the
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// boot-sectioned megas; the patched reset vector — or erased flash walking
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// up into the loader — on the tinies and the boot-section-less m48s). A
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// watchdog reset hands straight to the application. Otherwise the
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// host has one activation window per awaited knock byte ("pb"); an idle line
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// boots the application. A session then stays in the command loop until 'J'
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// jumps away or the chip resets.
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#include <libavr/libavr.hpp>
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using namespace avr::literals;
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namespace spm = avr::spm;
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namespace ee = avr::eeprom;
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namespace pureboot {
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namespace {
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// Purely polled — interrupts stay off, every guard folds to nothing.
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constexpr auto off = avr::irq::guard_policy::unused;
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constexpr std::uint8_t ack = '+';
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// Per-deployment personality, passed in by the build — pureboot_add_loader()
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// (the CMake function next to this file) resolves the defaults: the clock the
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// board actually runs, the wire baud, the serial backend and its pins. The
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// device signature needs no configuring — it comes from the chip database
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// (avr::hw::db.signature), the only universal source, since the tiny13A
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// cannot even read its signature row from code.
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#if !defined(PUREBOOT_CLOCK_HZ) || !defined(PUREBOOT_BAUD)
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#error \
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"PUREBOOT_CLOCK_HZ and PUREBOOT_BAUD select this build's clock and baud — create loader targets with pureboot_add_loader() (README.md)"
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#endif
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using dev = avr::device<{.clock = avr::hertz_t{PUREBOOT_CLOCK_HZ}}>;
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constexpr avr::baud_t wire_baud{PUREBOOT_BAUD};
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// The watchdog reset flag's home: MCUSR, or the classic megas' MCUCSR.
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consteval std::int16_t wdrf_field()
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{
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auto reg = std::string_view{avr::hw::db.regs[static_cast<std::size_t>(avr::power::detail::reset_reg())].name};
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return avr::hw::db.field_index(reg, "WDRF");
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}
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// Geometry: the resident loader owns the top slot of flash — 512 bytes,
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// except on the >64 KiB chips whose own smallest boot sector is 1 KiB (the
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// 1284s): there the slot is 1 KiB, matching the hardware boundary the
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// 512-byte figure comes from everywhere else. The word below the slot is
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// the trampoline (the application's relocated reset vector) on chips
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// without a hardware boot section — the tinies and the m48s, whose SPM
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// runs from anywhere (Atmel-8271 §26). A boot section also means the CPU
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// runs on while the RWW section programs; everywhere else it halts through
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// the operation.
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constexpr std::uint16_t slot_bytes = spm::flash_bytes > 65536 ? 1024 : 512;
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constexpr std::uint32_t base = spm::flash_bytes - slot_bytes;
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constexpr std::uint16_t page = spm::page_bytes;
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constexpr bool boot_section = avr::hw::curated::has_boot_section();
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// Past 64 KiB a byte address no longer fits the wire's 16 bits, so on the
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// large chips every flash address on the wire — and all slot arithmetic —
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// is a word address instead ('J' always was one). A slot spans the same
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// wire-high-byte pair in either unit (512 B = 2 x 256 bytes, 1 KiB =
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// 2 x 256 words), so the slot index is the high byte with its low bit
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// dropped everywhere.
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constexpr bool word_flash = spm::flash_bytes > 65536;
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constexpr std::uint16_t wire_base =
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word_flash ? static_cast<std::uint16_t>(base / 2) : static_cast<std::uint16_t>(base);
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constexpr std::uint16_t wire_page_mask = word_flash ? (page / 2 - 1) : (page - 1);
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// The activation window, in seconds, is a compile-time constant (the build
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// may override it): the whole EEPROM belongs to the application, and
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// re-timing the loader is a bootloader self-update with a re-timed binary.
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#if !defined(PUREBOOT_TIMEOUT)
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#define PUREBOOT_TIMEOUT 8
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#endif
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constexpr std::uint8_t timeout_seconds = PUREBOOT_TIMEOUT;
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// The 12-byte info block the host reads with the 'b' command, flash-resident
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// through flash_table (there is no crt to copy a .data image, and its storage
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// carries the word alignment 'b' needs to halve the address on the large
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// chips). The page byte is the wire count convention: 0 means 256.
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inline constexpr avr::flash_table<std::array<std::uint8_t, 12>{
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'P',
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'B',
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1, // magic, protocol version
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avr::hw::db.signature[0],
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avr::hw::db.signature[1],
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avr::hw::db.signature[2],
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static_cast<std::uint8_t>(page),
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wire_base & 0xff,
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wire_base >> 8, // app flash ends here; resident loader base (a word address on large chips)
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avr::hw::db.mem.eeprom_size & 0xff,
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avr::hw::db.mem.eeprom_size >> 8,
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// bit 0: host must patch the reset vector (no hardware boot section);
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// bit 1: flash wire addresses are word addresses
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static_cast<std::uint8_t>((boot_section ? 0 : 1) | (word_flash ? 2 : 0)),
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}>
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info_data;
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// The serial link. PUREBOOT_USART forces a hardware USART instance,
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// PUREBOOT_SOFT_SERIAL the polled software UART (no vector — the table
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// belongs to the application) on PUREBOOT_RX/PUREBOOT_TX; with neither, the
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// chip's first USART where it has one and the software UART elsewhere. Both
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// are class templates on the clock so only the selected backend is ever
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// instantiated. pending() is the cheap line test the activation window
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// polls; rx() then picks the byte up; drain() holds until the last
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// transmitted frame is fully on the wire (the jump hand-over must not let
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// the target's re-init clip the ack).
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#if defined(PUREBOOT_SOFT_SERIAL) && defined(PUREBOOT_USART)
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#error "PUREBOOT_SOFT_SERIAL and PUREBOOT_USART select opposing serial backends"
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#endif
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#if !defined(PUREBOOT_RX)
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#define PUREBOOT_RX pb0
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#endif
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#if !defined(PUREBOOT_TX)
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#define PUREBOOT_TX pb1
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#endif
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#if defined(PUREBOOT_USART)
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constexpr char usart_digit = '0' + PUREBOOT_USART;
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#else
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constexpr char usart_digit = '0';
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#endif
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template <avr::hertz_t C>
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struct hardware_link {
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using uart = avr::uart::usart<usart_digit, C, {.baud = wire_baud, .max_baud_error = 2.5_pct}>;
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// The compiled idle poll: lds UCSR0A (2), sbrc skipping the exit (2),
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// sbiw + sbci + sbci + brne (6).
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static constexpr std::uint8_t poll_cycles = 10;
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static void init()
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{
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avr::init<uart>();
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}
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static bool pending()
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{
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return uart::rx_ready();
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}
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static std::uint8_t rx()
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{
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return uart::read_blocking();
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}
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static void tx(std::uint8_t byte)
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{
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uart::write(byte);
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}
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static void drain()
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{
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uart::drain();
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}
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};
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template <avr::hertz_t C>
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struct software_link {
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using rx_t = avr::uart::software_rx_polled<C, avr::PUREBOOT_RX, wire_baud>;
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using tx_t = avr::uart::software_tx<C, avr::PUREBOOT_TX, wire_baud>;
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// The compiled idle poll: sbis skipping the exit (2), sbiw + sbci +
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// sbci + brne (6).
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static constexpr std::uint8_t poll_cycles = 8;
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static void init()
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{
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avr::init<rx_t, tx_t>();
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}
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static bool pending()
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{
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return rx_t::start_pending();
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}
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static std::uint8_t rx()
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{
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return rx_t::template read_blocking<off>();
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}
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static void tx(std::uint8_t byte)
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{
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tx_t::template write<off>(byte);
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}
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static void drain()
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{
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// The software transmitter returns only after the stop bit.
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}
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};
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#if defined(PUREBOOT_USART)
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static_assert(avr::uart::has_usart<usart_digit>(), "PUREBOOT_USART selects a hardware USART this chip does not have");
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using link = hardware_link<dev::clock>;
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#elif defined(PUREBOOT_SOFT_SERIAL)
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using link = software_link<dev::clock>;
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#else
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using link =
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std::conditional_t<avr::uart::has_usart<usart_digit>(), hardware_link<dev::clock>, software_link<dev::clock>>;
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#endif
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// The application's entry, an absolute address the linker pins (--defsym in
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// CMakeLists.txt): 0x0000 on the mega (word 0 stays the application's own
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// vector — BOOTRST re-vectors a reset into the loader in hardware) and the
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// trampoline word at base - 2 on the tinies. Reaching it must not depend on
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// where this copy runs, so the jump goes through a pointer: [[gnu::noipa]]
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// keeps the constant from folding back into a PC-relative call.
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extern "C" [[noreturn]] void pureboot_app();
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[[gnu::noipa, noreturn]] void jump(void (*target)())
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{
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target();
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__builtin_unreachable();
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}
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[[gnu::noinline, noreturn]] void run_app()
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{
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jump(pureboot_app);
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}
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// One activation window is a single 32-bit poll countdown. The divisor is
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// the backend's counted poll-loop cycles (its own comment reads them off the
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// compiled loop); whole-second precision is all the window promises, so the
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// nearest cycle count is plenty.
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consteval std::uint32_t window_polls()
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{
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return timeout_seconds * static_cast<std::uint32_t>(dev::clock.hz / link::poll_cycles);
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}
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bool pending_before_deadline()
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{
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std::uint32_t polls = window_polls();
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do {
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if (link::pending())
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return true;
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} while (--polls);
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return false;
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}
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// A knock byte under the activation deadline: an idle line means no host is
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// there, and the application runs.
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std::uint8_t rx_deadline()
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{
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if (!pending_before_deadline())
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run_app();
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return link::rx();
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}
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// Inlined into its call sites: reading two bytes across a call otherwise
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// strands the first in a call-saved register the caller must push/pop; folded
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// into the (noreturn) command loop that cost disappears.
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[[gnu::always_inline]] inline std::uint16_t rx16()
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{
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std::uint16_t low = link::rx();
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return static_cast<std::uint16_t>(low | (link::rx() << 8));
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}
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// The streamers take the count in the wire's 8-bit form: 0 means 256.
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//
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// Two functions, because they want opposite placement and placement is an
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// attribute: the byte-addressed loop is small enough to inline into both
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// callers, the word-addressed one stays out of line but flattened — a call to
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// the transmit inside it would strand the 24-bit cursor in callee-saved
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// registers. `word_flash` picks at the call site.
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[[maybe_unused, gnu::always_inline]] inline void send_flash_near(std::uint16_t address, std::uint8_t count)
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{
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do
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link::tx(avr::flash_load(reinterpret_cast<const std::uint8_t *>(address++)));
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while (--count);
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}
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// The 24-bit cursor as the machine holds it: the RAMPZ byte and a 16-bit Z,
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// carried explicitly (the reassembled 32-bit address folds away inside the
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// inlined far load).
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[[maybe_unused, gnu::flatten, gnu::noinline]] void send_flash_far(std::uint16_t address, std::uint8_t count)
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{
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std::uint8_t rampz = static_cast<std::uint8_t>(address >> 15);
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std::uint16_t z = static_cast<std::uint16_t>(address << 1);
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do {
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link::tx(avr::flash_load_far<std::uint8_t>((static_cast<std::uint32_t>(rampz) << 16) | z));
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// The protocol never reads across 64 KiB, but carrying the wrap is
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// smaller than the flat 32-bit cursor GCC builds without it.
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if (++z == 0)
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++rampz;
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} while (--count);
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}
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[[gnu::always_inline]] inline void send_flash(std::uint16_t address, std::uint8_t count)
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{
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if constexpr (word_flash)
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send_flash_far(address, count);
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else
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send_flash_near(address, count);
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}
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void send_eeprom(std::uint16_t address, std::uint8_t count)
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{
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do
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link::tx(ee::read(address++));
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while (--count);
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}
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// EEPROM write, host-paced: each ack goes out once the byte's write has
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// begun, so the next byte arrives while it completes and the following
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// write's own ready-wait sees an idle line. Nothing is ever missed, on
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// either serial backend, without a buffer.
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void store_eeprom(std::uint16_t address, std::uint8_t count)
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{
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do {
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ee::write<off>(address++, link::rx());
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link::tx(ack);
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} while (--count);
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}
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// One flash page: stream the bytes into the SPM buffer as little-endian
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// words, then erase and program — except the 512-byte slot this code runs
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// in, which is drained but never programmed, so a copy can never erase
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// itself. `slot_high` is the high byte of that running slot's base (run()
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// derives it); a broken host thus cannot brick the running loader, and a
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// copy flashed one slot lower may rewrite the slot above it — how pureboot
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// updates itself.
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void program_flash(std::uint16_t wire_address, std::uint8_t slot_high)
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{
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// No discard before the fill: the buffer is write-once per word
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// (§26.2.1), so filling over one a refused page or an application left
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// dirty programs stale words — but a page write auto-erases the buffer
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// (§26.2.1; §19.2 on the tinies), so that write clears the condition and
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// the host's read-back rewrites the page.
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// One induction either way. On the byte-addressed chips the wire address
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// itself walks the page (aligned, so the offset bits wrap to zero); on
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// the word-addressed large chips the wire word address becomes a 32-bit
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// byte cursor once, and their 256-byte page makes its low byte the whole
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// in-page offset. The slot index is one high byte of the wire address —
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// two values on byte-addressed chips (the & ~1), bits 16:9 re-packed on
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// the large ones.
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spm::flash_address_t address;
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std::uint8_t page_high;
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if constexpr (word_flash) {
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// Pages are aligned, so one page never crosses a 64 KiB boundary:
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// RAMPZ is a per-page constant and the fill cursor is a 16-bit Z
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// whose low byte is the whole in-page offset (256-byte pages). The
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// slot index is simply the wire word address's high byte.
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const std::uint8_t rampz = static_cast<std::uint8_t>(wire_address >> 15);
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const std::uint16_t z0 = static_cast<std::uint16_t>(wire_address << 1);
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std::uint16_t z = z0;
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do {
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std::uint8_t low = link::rx();
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std::uint8_t high = link::rx();
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spm::fill<off>((static_cast<spm::flash_address_t>(rampz) << 16) | z,
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static_cast<std::uint16_t>(low | (high << 8)));
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z += 2;
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} while (static_cast<std::uint8_t>(z));
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address = (static_cast<spm::flash_address_t>(rampz) << 16) | z0;
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page_high = static_cast<std::uint8_t>(wire_address >> 8) & 0xfe;
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} else {
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address = static_cast<spm::flash_address_t>(wire_address);
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do {
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std::uint8_t low = link::rx();
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std::uint8_t high = link::rx();
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spm::fill<off>(address, static_cast<std::uint16_t>(low | (high << 8)));
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address += 2;
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} while (static_cast<std::uint8_t>(address) & (page - 1));
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address -= 2; // back inside the page — erase and write ignore the word bits
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page_high = static_cast<std::uint8_t>(address >> 8) & 0xfe;
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}
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if (page_high != slot_high) {
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// The tinies and the m48s halt the CPU through the erase and the
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// write, so only the boot-sectioned megas — running on while their
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// RWW section programs — wait.
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spm::erase_page<off>(address);
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if constexpr (boot_section)
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spm::wait();
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spm::write_page<off>(address);
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if constexpr (boot_section)
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spm::wait();
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}
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// The megas program with their RWW section disabled; reads need it back
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// on. The same store discards the buffer (§26.2.2), so they never meet
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// the stale-word case above. boot_section implies an RWW section.
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if constexpr (boot_section)
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spm::rww_enable<off>();
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}
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// The four fuse/lock bytes in the hardware's own Z order: low, lock,
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|
// extended, high. Writing fuses is not a thing self-programming can do on
|
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// AVR — SPM reaches flash (and boot lock bits) only.
|
|
void send_fuses()
|
|
{
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|
std::uint8_t which = 0;
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|
do
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|
link::tx(spm::read_fuse<off>(static_cast<spm::fuse>(which)));
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|
while (++which & 3);
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|
}
|
|
|
|
[[noreturn]] void run()
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|
{
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|
// A watchdog reset belongs to the application (whose watchdog stays
|
|
// forced on until it clears WDRF) — no activation window in its way.
|
|
// The flag register is MCUSR, or the classic megas' MCUCSR.
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|
if (avr::hw::field_impl<wdrf_field()>::test())
|
|
run_app();
|
|
|
|
link::init();
|
|
|
|
// The high byte of the 512-byte-aligned base this copy runs at: the
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|
// return address is a word address, whose high byte is the 256-word slot
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|
// index — on byte-addressed chips doubled back into byte terms.
|
|
// program_flash refuses this one slot and the info block is addressed
|
|
// from it, so both follow wherever the code was flashed. The high byte is
|
|
// spelled as byteswap's low byte: the builtin's value is itself built by
|
|
// swapping the two stacked bytes, and the double swap folds to the single
|
|
// byte pick a hand assembler writes — `>> 8` leaves the swap materialized.
|
|
const std::uint16_t ra_words = reinterpret_cast<std::uint16_t>(__builtin_return_address(0));
|
|
const std::uint8_t ra_high = static_cast<std::uint8_t>(std::byteswap(ra_words));
|
|
const std::uint8_t slot_high = word_flash ? ra_high & 0xfe : static_cast<std::uint8_t>(ra_high << 1);
|
|
|
|
// The knock: 'p' then 'b', each under a fresh window; any other byte is
|
|
// line noise and waits again. Falling out of a window runs the app.
|
|
while (rx_deadline() != 'p' || rx_deadline() != 'b') {
|
|
}
|
|
|
|
for (;;) {
|
|
// No prompt while an EEPROM write runs: a pending write blocks SPM
|
|
// and fuse reads (§26.2.1), and the ack tells the host all is done.
|
|
ee::wait();
|
|
link::tx(ack);
|
|
const std::uint8_t command = link::rx();
|
|
switch (command) {
|
|
case 'b': { // info block, read relative to the running slot
|
|
// The block sits in the image's first 256 bytes (the build lint
|
|
// asserts it), and slots are 512-aligned — so the low byte of its
|
|
// link address (in wire units: bytes, or words on the large
|
|
// chips) is its offset in any slot, and the high byte of its
|
|
// runtime address is the running slot's. Composed from the two
|
|
// bytes — the high half is runtime data, so no absolute address
|
|
// is ever materialized.
|
|
const auto link_low = reinterpret_cast<std::uint16_t>(info_data.storage.data());
|
|
const std::uint8_t low =
|
|
word_flash ? static_cast<std::uint8_t>(link_low >> 1) : static_cast<std::uint8_t>(link_low);
|
|
send_flash(static_cast<std::uint16_t>(low | (slot_high << 8)), static_cast<std::uint8_t>(info_data.size()));
|
|
break;
|
|
}
|
|
case 'J': { // jump to a wire word address: hand-over and staging transfer
|
|
auto target = reinterpret_cast<void (*)()>(rx16());
|
|
link::tx(ack);
|
|
link::drain();
|
|
jump(target);
|
|
}
|
|
case 'R': // read flash: addr16, n8 (0 = 256)
|
|
case 'r': // read EEPROM: addr16, n8
|
|
case 'w': { // write EEPROM: addr16, n8, then n bytes each acked
|
|
std::uint16_t address = rx16();
|
|
std::uint8_t count = link::rx();
|
|
if (command == 'R')
|
|
send_flash(address, count);
|
|
else if (command == 'r')
|
|
send_eeprom(address, count);
|
|
else
|
|
store_eeprom(address, count);
|
|
break;
|
|
}
|
|
case 'W': // program one flash page: addr16, page bytes
|
|
program_flash(rx16(), slot_high);
|
|
break;
|
|
case 'F': // fuse and lock bytes
|
|
send_fuses();
|
|
break;
|
|
default: // unknown bytes are ignored; the loop re-acks
|
|
break;
|
|
}
|
|
}
|
|
}
|
|
|
|
} // namespace
|
|
} // namespace pureboot
|
|
|
|
template struct avr::startup::entry<pureboot::run>;
|