tricks 778->666: always_inline every single-call handler into the [[noreturn]] reset entry (which pays no prologue, so their push/pop of call-saved registers vanishes), walk the page pointer in Y (adiw, base recovered as g_addr-page) instead of recomputing Z=base+offset, bring the UART up in the two registers that are not already at their reset value, and seed the activation counter as __uint24. pure 896->842: TU-local internal linkage (proper hygiene, and it lets the compiler inline the one-call handlers), a byte-wide activation count, __uint24 timeout. Still one readable function per command. asm unchanged at 498: its C++-expressible parts are already C++; the core stays asm (the 666 B all-tricks tier is 168 B over — per-call ABI tax, not a feature). All three cross-mode byte-identical, protocol green. Co-Authored-By: Claude Opus 4.8 (1M context) <noreply@anthropic.com>
300 lines
8.7 KiB
C++
300 lines
8.7 KiB
C++
// TinySafeBoot on libavr — tier 1: pure, idiomatic C++.
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//
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// A serial flash bootloader for the ATmega328P boot section, reimplementing the
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// TinySafeBoot native-UART fixed-baud protocol on libavr with the full feature
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// set of the hand-written oracle: a watchdog-reset bail, one-wire half-duplex,
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// a config-page activation timeout, the password gate, emergency erase, and
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// config/flash/EEPROM read-write. This variant is written for clarity —
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// well-factored functions, no compiler-specific size hacks, no inline assembly.
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// The one-wire wiring, the flash-resident info block and every SPM/EEPROM lock
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// are libavr's to handle; the only attribute is the naked reset entry that
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// stands in for the absent C runtime.
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#include <libavr/libavr.hpp>
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#include <avr/io.h> // SP / RAMEND for the crt-free boot entry
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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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using dev = avr::device<{.clock = 16_MHz}>;
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// One-wire: RX and TX share the line, exactly as the native-UART TSB expects.
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using serial_t = dev::uart0<{.baud = 115200_Bd, .max_baud_error = 3_pct, .half_duplex = true}>;
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inline constexpr serial_t serial{};
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namespace tsb {
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namespace {
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// The loader is purely polled — it never enables interrupts — so every SPM and
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// EEPROM lock folds to nothing under this posture.
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constexpr auto off = avr::irq::guard_policy::unused;
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// The handshake bytes, identical across every TSB host.
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constexpr std::uint8_t confirm = '!';
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constexpr std::uint8_t request = '?';
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constexpr std::uint8_t knock = '@';
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// Boot geometry for the 1 KB boot section (BOOTSZ=10). The page size and the
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// flash/EEPROM extents are the chip database's to know. app_end is the config
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// page (the LASTPAGE holding the app-jump vector, activation timeout and
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// password), one page below the boot section.
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constexpr std::uint16_t page = spm::page_bytes;
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constexpr std::uint16_t boot_bytes = 1024;
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constexpr std::uint16_t app_end = spm::flash_bytes - boot_bytes - page;
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constexpr std::uint16_t eeprom_end = avr::hw::db.mem.eeprom_size - 1;
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// Firmware version stamp: YY*512 + MM*32 + DD, the encoding the host decodes.
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constexpr std::uint16_t build_date = 26 * 512 + 7 * 32 + 19;
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// The 16-byte device-info block the host reads on activation. A flash_table
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// keeps it in progmem with no .data image (there is no crt to copy one).
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// clang-format off
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inline constexpr std::array<std::uint8_t, 16> info_data = {
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'T', 'S', 'B',
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build_date & 0xFF, build_date >> 8,
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0xF3, // status byte (native-UART fixed-baud lineage)
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0x1E, 0x95, 0x0F, // ATmega328P signature
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page / 2, // page size in words
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(app_end / 2) & 0xFF, (app_end / 2) >> 8, // app-flash boundary, words
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eeprom_end & 0xFF, eeprom_end >> 8,
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0xAA, 0xAA, // ATmega processor-type marker (bytes 14 == 15)
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};
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// clang-format on
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using info = avr::flash_table<info_data>;
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// Blocking byte read/write over the one-wire line: read() releases the line to
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// the receiver, write() takes it and holds it until the frame is out.
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std::uint8_t rx()
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{
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return serial.read_blocking();
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}
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void tx(std::uint8_t byte)
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{
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serial.write(byte);
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}
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const std::uint8_t *flash_ptr(std::uint16_t addr)
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{
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return reinterpret_cast<const std::uint8_t *>(addr);
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}
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// Stream `count` bytes to the host, from flash (LPM) or from EEPROM.
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void send_flash(std::uint16_t addr, std::uint8_t count)
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{
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while (count--)
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tx(avr::flash_load(flash_ptr(addr++)));
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}
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void send_eeprom(std::uint16_t addr, std::uint8_t count)
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{
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while (count--)
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tx(ee::read(addr++));
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}
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// Prompt the host with '?' and report whether it answered '!'.
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bool request_confirm()
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{
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tx(request);
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return rx() == confirm;
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}
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// Stream one page from the host straight into the already-erased flash page at
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// `addr`, filling the SPM word buffer low byte then high — no SRAM staging, so
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// receiving and programming are the same loop.
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void store_flash_page(std::uint16_t addr)
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{
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for (std::uint16_t i = 0; i < page; i += 2) {
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std::uint8_t lo = rx();
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std::uint8_t hi = rx();
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spm::fill<off>(addr + i, static_cast<std::uint16_t>(lo | (hi << 8)));
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}
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spm::write_page<off>(addr);
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spm::wait();
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}
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// Stream one page from the host straight into EEPROM, byte by byte.
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void store_eeprom_page(std::uint16_t addr)
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{
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for (std::uint16_t i = 0; i < page; ++i)
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ee::write<off>(addr + i, rx());
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}
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// Erase one flash page and wait it out — the erase step shared by the whole-app
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// erase, the config-page rewrite and the emergency wipe.
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void erase_page(std::uint16_t addr)
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{
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spm::erase_page<off>(addr);
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spm::wait();
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}
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// Erase the whole application, one page at a time (unwritten pages stay erased).
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void erase_application()
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{
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for (std::uint16_t a = 0; a < app_end; a += page)
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erase_page(a);
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spm::rww_enable<off>();
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}
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// Run the application: reset vector at 0x0000. Any non-command byte, a wrong
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// password, or an idle programmer port lands here.
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[[noreturn]] void appjump()
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{
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spm::wait(); // make sure any pending SPM finished before handing over
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reinterpret_cast<void (*)()>(0)();
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__builtin_unreachable();
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}
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// 'f': stream the application flash back, one page per host '!'. Self-terminates
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// at the application boundary; the host normally stops earlier with a non-'!'.
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void read_flash()
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{
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for (std::uint16_t a = 0; a < app_end; a += page) {
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if (rx() != confirm)
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return;
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send_flash(a, page);
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}
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}
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// 'e': stream EEPROM back, one page per host '!', until the host stops.
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void read_eeprom()
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{
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for (std::uint16_t a = 0;; a += page) {
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if (rx() != confirm)
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return;
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send_eeprom(a, page);
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}
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}
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// 'F': erase the whole application first, then take pages the host offers
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// behind '?'.
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void write_flash()
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{
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erase_application();
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for (std::uint16_t a = 0; request_confirm(); a += page)
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store_flash_page(a);
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}
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// 'E': take pages the host offers behind '?' into EEPROM.
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void write_eeprom()
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{
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for (std::uint16_t a = 0; request_confirm(); a += page)
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store_eeprom_page(a);
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}
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// 'C': replace the config page, then echo it back for the host to verify.
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void write_config()
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{
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if (!request_confirm())
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return;
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erase_page(app_end);
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store_flash_page(app_end);
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spm::rww_enable<off>();
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send_flash(app_end, page);
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}
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// Emergency erase: wipe the application flash, the EEPROM and the config page.
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// Reachable only from the password gate (a wrong byte can never reach it), so a
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// blank config still leaves the loader recoverable.
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void emergency_erase()
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{
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erase_application();
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for (std::uint16_t a = 0; a <= eeprom_end; ++a)
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ee::write<off>(a, 0xff);
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erase_page(app_end);
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spm::rww_enable<off>();
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}
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// The password gate. The config page holds the password at app_end+3,
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// terminated by 0xff (a blank page means no password). A byte of 0 requests
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// emergency erase; a wrong byte hangs the loader, still draining the line, so a
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// wrong password can never fall through to the erase.
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enum class gate : std::uint8_t { pass, emergency };
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gate password_gate()
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{
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for (const std::uint8_t *pw = flash_ptr(app_end + 3);; ++pw) {
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std::uint8_t expected = avr::flash_load(pw);
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if (expected == 0xff)
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return gate::pass;
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std::uint8_t got = rx();
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if (got == 0)
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return gate::emergency;
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if (got != expected)
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for (;;)
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rx();
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}
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}
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[[noreturn]] void run()
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{
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// A watchdog reset hands straight back to the application, as the reference
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// loader does, rather than re-entering the bootloader.
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if (avr::hw::mcusr::wdrf.test())
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appjump();
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avr::init<serial_t>();
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// Activation: the host knocks three '@' inside a window whose length is the
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// config page's timeout byte (floored so a corrupt page can never lock the
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// loader out). An idle port times out and boots the application.
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__uint24 idle = static_cast<__uint24>(avr::flash_load(flash_ptr(app_end + 2)) | 16) << 16;
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std::uint8_t knocks = 0;
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while (knocks < 3) {
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if (auto byte = serial.read())
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knocks = *byte == knock ? knocks + 1 : 0;
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else if (--idle == 0)
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appjump();
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}
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switch (password_gate()) {
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case gate::pass:
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send_flash(reinterpret_cast<std::uint16_t>(info::storage.data()), info::size());
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break;
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case gate::emergency:
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if (!request_confirm() || !request_confirm())
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appjump();
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emergency_erase();
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break;
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}
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for (;;) {
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tx(confirm); // Mainloop ready
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switch (rx()) {
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case 'f':
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read_flash();
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break;
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case 'F':
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write_flash();
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break;
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case 'e':
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read_eeprom();
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break;
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case 'E':
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write_eeprom();
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break;
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case 'c':
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send_flash(app_end, page);
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break;
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case 'C':
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write_config();
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break;
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default:
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appjump(); // 'q' or any other byte runs the application
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}
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}
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}
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} // namespace
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} // namespace tsb
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// Reset lands here: BOOTRST vectors to the boot section base and .vectors is
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// laid first, so this is the first instruction executed. No crt ran, so set the
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// stack pointer before anything is called.
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extern "C" [[gnu::naked, gnu::used, gnu::section(".vectors")]] void __boot_entry()
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{
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SP = RAMEND;
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tsb::run();
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}
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