build: the libavr pin advances past the audit sweep, and the numbers get names
The pin crosses libavr's phase-6 close and the guideline sweep behind it; the image is byte-identical in both modes at 8206 bytes. The port's own sweep, against the same rules. Every mutable `static inline` takes `m_` - uptime's counter, the sampler's window, the controller's five, the statistics histogram and the terminal's line state (rule 46; a private `static constexpr` is a constant rather than state and keeps its bare name). The command table is `std::to_array` and the serial config breaks one member per line (rules 36, 40). And three numbers get the name they already had somewhere: duty goes through `percent_t::of()` rather than a hand-built basis-point count, the ADC's top count is `thermistor::adc_full_scale` instead of 1023 in four places, and the two `0xffffffff` are `open_circuit` - which was already declared five lines away - and `never_written`, which replaces a comment explaining the literal (rules 5, 6, 41). Measured, not assumed: rendering `adc_full_scale` into the `show` line instead of leaving it in the message string cost 6 bytes, so the display text stays text. Co-Authored-By: Claude Opus 5 <noreply@anthropic.com>
This commit is contained in:
2
libavr
2
libavr
Submodule libavr updated: 07a0c40235...4c7d4d6ff3
@@ -13,24 +13,24 @@ using dev = avr::device<{.clock = 16_MHz}>;
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// Millisecond uptime from timer2 CTC (the fan owns timer0).
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class uptime {
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static inline volatile std::uint64_t ms = 0;
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static inline volatile std::uint64_t m_ms = 0;
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public:
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using ticker = dev::timer2<{.frequency = 1_kHz, .on_compare = [] { ms = ms + 1; }}>;
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using ticker = dev::timer2<{.frequency = 1_kHz, .on_compare = [] { m_ms = m_ms + 1; }}>;
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static std::uint64_t millis()
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{
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avr::irq::interrupt_guard lock;
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return ms;
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return m_ms;
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}
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};
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// 1000-sample averaging window fed by the conversion interrupt.
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class sampler {
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static inline volatile std::uint32_t sum = 0;
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static inline volatile std::uint16_t count = 0;
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static inline volatile std::uint16_t window = 0;
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static inline volatile bool ready = false;
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static inline volatile std::uint32_t m_sum = 0;
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static inline volatile std::uint16_t m_count = 0;
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static inline volatile std::uint16_t m_window = 0;
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static inline volatile bool m_ready = false;
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static constexpr std::uint16_t samples = 1000;
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@@ -38,13 +38,13 @@ class sampler {
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using input = dev::adc<{.trigger = avr::adc::trigger::free_running,
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.on_conversion =
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[](std::uint16_t value) {
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sum = sum + value;
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count = count + 1;
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if (count >= samples) {
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window = static_cast<std::uint16_t>(sum / samples);
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sum = 0;
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count = 0;
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ready = true;
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m_sum = m_sum + value;
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m_count = m_count + 1;
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if (m_count >= samples) {
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m_window = static_cast<std::uint16_t>(m_sum / samples);
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m_sum = 0;
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m_count = 0;
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m_ready = true;
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}
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}},
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avr::adc::input<avr::adc::input_pin(0)>>;
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@@ -55,11 +55,11 @@ class sampler {
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static bool take(std::uint16_t &value)
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{
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avr::irq::interrupt_guard lock;
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if (!ready) {
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if (!m_ready) {
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return false;
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}
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value = window;
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ready = false;
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value = m_window;
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m_ready = false;
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return true;
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}
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};
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@@ -69,7 +69,11 @@ using fan = dev::pwm<avr::pd5, {.frequency = 50_kHz}>;
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// 115200 at 16 MHz lands +2.1 % off, past the receiver-tolerance table the
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// solver holds rates to - the rate this board has always spoken, so the
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// override states that it is meant.
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using serial_t = dev::uart0<{.baud = 115200_Bd, .rx_buffer = 32, .allow_baud_error = true}>;
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using serial_t = dev::uart0<{
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.baud = 115200_Bd,
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.rx_buffer = 32,
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.allow_baud_error = true,
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}>;
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inline constexpr serial_t serial{};
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} // namespace app
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@@ -11,16 +11,16 @@
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namespace app {
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class controller {
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static inline std::uint16_t adc_average = 0;
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static inline std::int16_t temp_quarters = 0;
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static inline std::uint8_t percent = 100;
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static inline bool auto_mode = true;
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static inline bool have_data = false;
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static inline std::uint16_t m_adc_average = 0;
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static inline std::int16_t m_temp_quarters = 0;
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static inline std::uint8_t m_percent = 100;
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static inline bool m_auto_mode = true;
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static inline bool m_have_data = false;
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public:
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static void init()
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{
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fan::set_duty(avr::percent_t{10000}); // full blast until the first reading
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fan::set_duty(100_pct); // full blast until the first reading
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}
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static void poll()
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@@ -29,50 +29,50 @@ class controller {
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if (!sampler::take(sample)) {
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return;
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}
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adc_average = sample;
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temp_quarters = thermistor::quarters(sample);
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have_data = true;
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if (auto_mode) {
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percent = curve::duty(static_cast<std::int8_t>((temp_quarters + 2) / 4));
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m_adc_average = sample;
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m_temp_quarters = thermistor::quarters(sample);
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m_have_data = true;
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if (m_auto_mode) {
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m_percent = curve::duty(static_cast<std::int8_t>((m_temp_quarters + 2) / 4));
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}
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fan::set_duty(avr::percent_t{static_cast<std::uint16_t>(percent * 100)});
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fan::set_duty(avr::percent_t::of(m_percent));
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}
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static void set_manual(std::uint8_t p)
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{
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auto_mode = false;
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percent = p;
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fan::set_duty(avr::percent_t{static_cast<std::uint16_t>(p * 100)});
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m_auto_mode = false;
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m_percent = p;
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fan::set_duty(avr::percent_t::of(p));
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}
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static void set_automatic()
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{
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auto_mode = true;
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m_auto_mode = true;
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}
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static bool automatic()
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{
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return auto_mode;
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return m_auto_mode;
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}
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static bool data_available()
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{
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return have_data;
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return m_have_data;
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}
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static std::int16_t temperature_quarters()
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{
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return temp_quarters;
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return m_temp_quarters;
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}
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static std::uint16_t last_adc()
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{
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return adc_average;
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return m_adc_average;
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}
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static std::uint8_t fan_percent()
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{
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return percent;
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return m_percent;
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}
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};
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@@ -9,7 +9,7 @@
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// Temperature histogram: one uint32 bucket per C 0..99, sampled once a
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// second, written back to EEPROM every 30 minutes (update() only touches
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// changed bytes). Erased EEPROM reads back as 0xffffffff - treated as 0.
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// changed bytes).
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namespace app {
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class statistics {
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@@ -17,11 +17,15 @@ class statistics {
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static constexpr std::uint32_t sample_delay_ms = 1'000;
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static constexpr std::uint32_t writeback_delay_ms = 1'800'000;
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// What an erased cell reads back as, so a bucket nobody has written yet
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// counts as no samples rather than four billion.
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static constexpr std::uint32_t never_written = ~std::uint32_t{0};
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using stored = avr::eeprom::var<std::array<std::uint32_t, range>, 0>;
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static inline std::array<std::uint32_t, range> histogram{};
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static inline std::uint64_t last_sample = 0;
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static inline std::uint64_t last_writeback = 0;
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static inline std::array<std::uint32_t, range> m_histogram{};
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static inline std::uint64_t m_last_sample = 0;
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static inline std::uint64_t m_last_writeback = 0;
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static constexpr std::uint8_t clamp(std::int8_t t)
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{
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@@ -33,9 +37,9 @@ class statistics {
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static void init()
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{
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histogram = stored::read();
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for (auto &bucket : histogram) {
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if (bucket == 0xffffffff) {
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m_histogram = stored::read();
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for (auto &bucket : m_histogram) {
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if (bucket == never_written) {
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bucket = 0;
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}
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}
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@@ -44,31 +48,31 @@ class statistics {
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static void record(std::int8_t celsius)
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{
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auto now = uptime::millis();
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if (now >= last_sample + sample_delay_ms) {
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++histogram[clamp(celsius)];
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last_sample = now;
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if (now >= m_last_sample + sample_delay_ms) {
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++m_histogram[clamp(celsius)];
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m_last_sample = now;
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}
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if (now >= last_writeback + writeback_delay_ms) {
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if (now >= m_last_writeback + writeback_delay_ms) {
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save();
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last_writeback = now;
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m_last_writeback = now;
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}
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}
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static void save()
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{
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stored::update(histogram);
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stored::update(m_histogram);
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}
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static void reset()
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{
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histogram = {};
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stored::update(histogram);
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m_histogram = {};
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stored::update(m_histogram);
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}
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static std::uint8_t min_temperature()
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{
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for (std::uint8_t i = 0; i < range; ++i) {
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if (histogram[i]) {
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if (m_histogram[i]) {
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return i;
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}
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}
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@@ -78,7 +82,7 @@ class statistics {
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static std::uint8_t max_temperature()
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{
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for (std::uint8_t i = range; i > 0; --i) {
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if (histogram[i - 1]) {
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if (m_histogram[i - 1]) {
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return i - 1;
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}
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}
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@@ -88,7 +92,7 @@ class statistics {
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static std::uint64_t total_samples()
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{
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std::uint64_t total = 0;
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for (auto bucket : histogram) {
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for (auto bucket : m_histogram) {
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total += bucket;
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}
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return total;
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@@ -97,7 +101,7 @@ class statistics {
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static std::uint32_t highest_bucket()
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{
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std::uint32_t highest = 0;
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for (auto bucket : histogram) {
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for (auto bucket : m_histogram) {
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if (bucket > highest) {
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highest = bucket;
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}
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@@ -107,7 +111,7 @@ class statistics {
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static std::uint32_t bucket(std::uint8_t celsius)
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{
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return histogram[clamp(static_cast<std::int8_t>(celsius))];
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return m_histogram[clamp(static_cast<std::int8_t>(celsius))];
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}
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};
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@@ -22,11 +22,11 @@ class terminal {
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static constexpr char ctrl_c = 0x03;
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static constexpr char backspace = 0x08;
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static constexpr char del = 0x7f;
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static inline std::array<char, 24> line{};
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static inline std::uint8_t at = 0;
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static inline bool overflowed = false;
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static inline bool monitoring = false;
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static inline std::uint64_t last_monitor = 0;
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static inline std::array<char, 24> m_line{};
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static inline std::uint8_t m_at = 0;
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static inline bool m_overflowed = false;
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static inline bool m_monitoring = false;
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static inline std::uint64_t m_last_monitor = 0;
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// Commands, in the order they are matched - which is the order the original
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// firmware matched them in, and that order is load-bearing. An abbreviation
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@@ -38,7 +38,7 @@ class terminal {
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bool exact; // reset only: an abbreviation must not be able to wipe data
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};
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static constexpr std::array<command, 13> commands{{
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static constexpr auto commands = std::to_array<command>({
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{"help", false},
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{"show", false},
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{"curve", false},
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@@ -52,7 +52,7 @@ class terminal {
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{"auto", false},
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{"version", false},
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{"save", false},
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}};
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});
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// Column the descriptions' colons line up in, counted from the start of the
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// name. The longest name is `bootloader` at 10, so 12 leaves it a space and
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@@ -146,10 +146,10 @@ class terminal {
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static std::uint32_t resistance()
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{
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auto adc = controller::last_adc();
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if (adc >= 1023) {
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return 0xffffffff; // open circuit: the divider has no solution
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if (adc >= thermistor::adc_full_scale) {
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return open_circuit;
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}
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return static_cast<std::uint32_t>(thermistor::series_resistor) * adc / (1023u - adc);
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return static_cast<std::uint32_t>(thermistor::series_resistor) * adc / (thermistor::adc_full_scale - adc);
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}
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// One value per line behind a dotted label, as the original had it. A single
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@@ -282,9 +282,9 @@ class terminal {
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{
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// A line that overflowed the buffer is not a command - it is the tail of
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// one. Acting on it is how a truncated `reset` becomes a surprise.
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if (overflowed) {
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if (m_overflowed) {
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serial << "input too long, ignored\r\n"_P;
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overflowed = false;
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m_overflowed = false;
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return;
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}
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@@ -318,7 +318,7 @@ class terminal {
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print_curve();
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return;
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case 3:
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monitoring = true;
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m_monitoring = true;
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return;
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case 4:
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serial << "entering bootloader\r\n"_P;
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@@ -398,17 +398,17 @@ class terminal {
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static void poll()
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{
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if (monitoring) {
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if (uptime::millis() >= last_monitor + 1000) {
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if (m_monitoring) {
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if (uptime::millis() >= m_last_monitor + 1000) {
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show();
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last_monitor = uptime::millis();
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m_last_monitor = uptime::millis();
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}
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// Ctrl+C only, as the original had it. Stopping on *any* byte reads
|
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// well until a host sends a line ending: `monitor\r\n` then stops
|
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// itself on the `\n` it arrived with, one reading in.
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if (auto in = serial_t::read(); in && *in == ctrl_c) {
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serial << "^C\r\n"_P;
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monitoring = false;
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m_monitoring = false;
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prompt();
|
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}
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return;
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@@ -419,18 +419,18 @@ class terminal {
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// Abandon whatever was typed and start a fresh line, which is
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// what Ctrl+C means at every other prompt in the world.
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serial << "^C\r\n"_P;
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at = 0;
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overflowed = false;
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m_at = 0;
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m_overflowed = false;
|
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prompt();
|
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} else if (c == '\r' || c == '\n') {
|
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serial << "\r\n"_P;
|
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if (at == 0 && !overflowed) {
|
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if (m_at == 0 && !m_overflowed) {
|
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prompt(); // a bare Enter just reprompts, no gap needed
|
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continue;
|
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}
|
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dispatch(std::string_view{line.data(), at});
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at = 0;
|
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if (!monitoring) {
|
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dispatch(std::string_view{m_line.data(), m_at});
|
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m_at = 0;
|
||||
if (!m_monitoring) {
|
||||
// A blank line between a command's output and the next
|
||||
// prompt: without it the answer and the thing you type
|
||||
// next run together and a screen of them is unreadable.
|
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@@ -438,16 +438,16 @@ class terminal {
|
||||
prompt();
|
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}
|
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} else if (c == del || c == backspace) {
|
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if (at) {
|
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--at;
|
||||
if (m_at) {
|
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--m_at;
|
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serial << "\b \b"_P;
|
||||
}
|
||||
} else if (c >= ' ') {
|
||||
if (at < line.size()) {
|
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line[at++] = c;
|
||||
if (m_at < m_line.size()) {
|
||||
m_line[m_at++] = c;
|
||||
serial << c; // echo
|
||||
} else {
|
||||
overflowed = true; // reported when the line is submitted
|
||||
m_overflowed = true; // reported when the line is submitted
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
@@ -11,6 +11,10 @@
|
||||
// counts map to quarter- C with linear interpolation between table steps.
|
||||
namespace app::thermistor {
|
||||
|
||||
// The converter's top count: this board reads the divider at the ADC's
|
||||
// full 10 bits, so a reading and the resistance it implies both scale by it.
|
||||
inline constexpr std::uint16_t adc_full_scale = (1u << 10) - 1;
|
||||
|
||||
inline constexpr double series_resistor = 9951;
|
||||
inline constexpr double nominal_resistance = 9270;
|
||||
inline constexpr double beta = 3212;
|
||||
@@ -20,7 +24,7 @@ namespace detail {
|
||||
|
||||
consteval double temperature_of(double adc)
|
||||
{
|
||||
double resistance = series_resistor * adc / (1023.0 - adc);
|
||||
double resistance = series_resistor * adc / (adc_full_scale - adc);
|
||||
// __builtin_log constant-folds on the AVR backend, so the table is
|
||||
// built at compile time with no runtime libm.
|
||||
double steinhart = __builtin_log(resistance / nominal_resistance) / beta + 1.0 / (nominal_temperature + 273.15);
|
||||
|
||||
@@ -1,6 +1,6 @@
|
||||
# The board has no reset line and no programming header, so the loader-entry
|
||||
# route in the emitted image is the only thing standing between a firmware change
|
||||
# and an unreflashable board. It has been wrong before - see the script.
|
||||
# and an unreflashable board.
|
||||
find_package(Python3 COMPONENTS Interpreter)
|
||||
if(Python3_FOUND)
|
||||
add_test(NAME fantemp.reachability
|
||||
|
||||
Reference in New Issue
Block a user