refactor: break out different areas of functionality
This commit is contained in:
@@ -23,631 +23,20 @@
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*/
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#include "watch.h"
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#include "peripheral_clk_config.h"
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#include <stdlib.h>
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//////////////////////////////////////////////////////////////////////////////////////////
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// User callbacks and other definitions
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ext_irq_cb_t btn_alarm_callback;
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ext_irq_cb_t a2_callback;
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ext_irq_cb_t d1_callback;
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// TODO: this should all live in watch_deepsleep.c, but right now watch_extint.c needs it
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// because we're being too clever about the alarm button.
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static void extwake_callback(uint8_t reason);
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//////////////////////////////////////////////////////////////////////////////////////////
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// Initialization
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void _watch_init() {
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// disable the LED pin (it may have been enabled by the bootloader)
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watch_disable_digital_output(RED);
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// Use switching regulator for lower power consumption.
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SUPC->VREG.bit.SEL = 1;
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while(!SUPC->STATUS.bit.VREGRDY);
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// External wake depends on RTC; calendar is a required module.
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CALENDAR_0_init();
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calendar_enable(&CALENDAR_0);
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// Not sure if this belongs in every app -- is there a power impact?
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delay_driver_init();
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// set up state
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btn_alarm_callback = NULL;
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a2_callback = NULL;
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d1_callback = NULL;
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}
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//////////////////////////////////////////////////////////////////////////////////////////
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// Segmented Display
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static const uint8_t Character_Set[] =
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{
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0b00000000, //
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0b00000000, // ! (unused)
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0b00100010, // "
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0b01100011, // # (degree symbol, hash mark doesn't fit)
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0b00000000, // $ (unused)
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0b00000000, // % (unused)
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0b01000100, // & ("lowercase 7" for positions 4 and 6)
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0b00100000, // '
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0b00111001, // (
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0b00001111, // )
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0b00000000, // * (unused)
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0b11000000, // + (only works in position 0)
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0b00000100, // ,
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0b01000000, // -
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0b01000000, // . (same as -, semantically most useful)
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0b00010010, // /
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0b00111111, // 0
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0b00000110, // 1
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0b01011011, // 2
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0b01001111, // 3
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0b01100110, // 4
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0b01101101, // 5
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0b01111101, // 6
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0b00000111, // 7
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0b01111111, // 8
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0b01101111, // 9
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0b00000000, // : (unused)
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0b00000000, // ; (unused)
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0b01011000, // <
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0b01001000, // =
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0b01001100, // >
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0b01010011, // ?
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0b11111111, // @ (all segments on)
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0b01110111, // A
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0b01111111, // B
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0b00111001, // C
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0b00111111, // D
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0b01111001, // E
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0b01110001, // F
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0b00111101, // G
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0b01110110, // H
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0b10001001, // I (only works in position 0)
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0b00001110, // J
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0b01110101, // K
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0b00111000, // L
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0b10110111, // M (only works in position 0)
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0b00110111, // N
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0b00111111, // O
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0b01110011, // P
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0b01100111, // Q
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0b11110111, // R (only works in position 1)
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0b01101101, // S
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0b10000001, // T (only works in position 0; set (1, 12) to make it work in position 1)
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0b00111110, // U
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0b00111110, // V
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0b10111110, // W (only works in position 0)
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0b01111110, // X
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0b01101110, // Y
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0b00011011, // Z
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0b00111001, // [
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0b00100100, // backslash
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0b00001111, // ]
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0b00100011, // ^
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0b00001000, // _
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0b00000010, // `
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0b01011111, // a
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0b01111100, // b
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0b01011000, // c
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0b01011110, // d
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0b01111011, // e
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0b01110001, // f
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0b01101111, // g
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0b01110100, // h
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0b00010000, // i
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0b01000010, // j (appears as superscript to work in more positions)
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0b01110101, // k
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0b00110000, // l
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0b10110111, // m (only works in position 0)
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0b01010100, // n
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0b01011100, // o
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0b01110011, // p
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0b01100111, // q
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0b01010000, // r
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0b01101101, // s
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0b01111000, // t
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0b01100010, // u (appears as superscript to work in more positions)
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0b01100010, // v (appears as superscript to work in more positions)
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0b10111110, // w (only works in position 0)
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0b01111110, // x
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0b01101110, // y
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0b00011011, // z
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0b00111001, // {
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0b00110000, // |
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0b00001111, // }
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0b00000001, // ~
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};
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static const uint64_t Segment_Map[] = {
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0x4e4f0e8e8f8d4d0d, // Position 0, mode
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0xc8c4c4c8b4b4b0b, // Position 1, mode (Segments B and C shared, as are segments E and F)
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0xc049c00a49890949, // Position 2, day of month (Segments A, D, G shared; missing segment F)
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0xc048088886874707, // Position 3, day of month
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0xc053921252139352, // Position 4, clock hours (Segments A and D shared)
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0xc054511415559594, // Position 5, clock hours
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0xc057965616179716, // Position 6, clock minutes (Segments A and D shared)
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0xc041804000018a81, // Position 7, clock minutes
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0xc043420203048382, // Position 8, clock seconds
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0xc045440506468584, // Position 9, clock seconds
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};
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static const uint8_t Num_Chars = 10;
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static const uint32_t IndicatorSegments[6] = {
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SLCD_SEGID(0, 17), // WATCH_INDICATOR_SIGNAL
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SLCD_SEGID(0, 16), // WATCH_INDICATOR_BELL
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SLCD_SEGID(2, 17), // WATCH_INDICATOR_PM
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SLCD_SEGID(2, 16), // WATCH_INDICATOR_24H
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SLCD_SEGID(1, 10), // WATCH_INDICATOR_LAP
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};
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void watch_enable_display() {
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SEGMENT_LCD_0_init();
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slcd_sync_enable(&SEGMENT_LCD_0);
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}
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inline void watch_set_pixel(uint8_t com, uint8_t seg) {
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slcd_sync_seg_on(&SEGMENT_LCD_0, SLCD_SEGID(com, seg));
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}
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inline void watch_clear_pixel(uint8_t com, uint8_t seg) {
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slcd_sync_seg_off(&SEGMENT_LCD_0, SLCD_SEGID(com, seg));
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}
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void watch_display_character(uint8_t character, uint8_t position) {
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// handle lowercase 7 if needed
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if (character == '7' && (position == 4 || position == 6)) character = '&';
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uint64_t segmap = Segment_Map[position];
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uint64_t segdata = Character_Set[character - 0x20];
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for (int i = 0; i < 8; i++) {
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uint8_t com = (segmap & 0xFF) >> 6;
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if (com > 2) {
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// COM3 means no segment exists; skip it.
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segmap = segmap >> 8;
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segdata = segdata >> 1;
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continue;
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}
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uint8_t seg = segmap & 0x3F;
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slcd_sync_seg_off(&SEGMENT_LCD_0, SLCD_SEGID(com, seg));
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if (segdata & 1) slcd_sync_seg_on(&SEGMENT_LCD_0, SLCD_SEGID(com, seg));
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segmap = segmap >> 8;
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segdata = segdata >> 1;
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}
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}
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void watch_display_string(char *string, uint8_t position) {
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size_t i = 0;
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while(string[i] != 0) {
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watch_display_character(string[i], position + i);
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i++;
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if (i >= Num_Chars) break;
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}
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}
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inline void watch_set_colon() {
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slcd_sync_seg_on(&SEGMENT_LCD_0, SLCD_SEGID(1, 16));
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}
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inline void watch_clear_colon() {
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slcd_sync_seg_off(&SEGMENT_LCD_0, SLCD_SEGID(1, 16));
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}
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inline void watch_set_indicator(WatchIndicatorSegment indicator) {
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slcd_sync_seg_on(&SEGMENT_LCD_0, IndicatorSegments[indicator]);
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}
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inline void watch_clear_indicator(WatchIndicatorSegment indicator) {
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slcd_sync_seg_off(&SEGMENT_LCD_0, IndicatorSegments[indicator]);
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}
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void watch_clear_all_indicators() {
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slcd_sync_seg_off(&SEGMENT_LCD_0, SLCD_SEGID(2, 17));
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slcd_sync_seg_off(&SEGMENT_LCD_0, SLCD_SEGID(2, 16));
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slcd_sync_seg_off(&SEGMENT_LCD_0, SLCD_SEGID(0, 17));
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slcd_sync_seg_off(&SEGMENT_LCD_0, SLCD_SEGID(0, 16));
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slcd_sync_seg_off(&SEGMENT_LCD_0, SLCD_SEGID(1, 10));
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}
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//////////////////////////////////////////////////////////////////////////////////////////
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// Buttons
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void watch_enable_buttons() {
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EXTERNAL_IRQ_0_init();
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}
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void watch_register_button_callback(const uint8_t pin, ext_irq_cb_t callback) {
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if (pin == BTN_ALARM) {
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gpio_set_pin_direction(BTN_ALARM, GPIO_DIRECTION_IN);
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gpio_set_pin_pull_mode(BTN_ALARM, GPIO_PULL_DOWN);
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gpio_set_pin_function(BTN_ALARM, PINMUX_PA02G_RTC_IN2);
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btn_alarm_callback = callback;
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_extwake_register_callback(&CALENDAR_0.device, extwake_callback);
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} else {
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ext_irq_register(pin, callback);
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}
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}
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//////////////////////////////////////////////////////////////////////////////////////////
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// LED
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bool PWM_0_enabled = false;
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void watch_enable_led(bool pwm) {
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if (pwm) {
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if (PWM_0_enabled) return;
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PWM_0_init();
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pwm_set_parameters(&PWM_0, 10000, 0);
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pwm_enable(&PWM_0);
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PWM_0_enabled = true;
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} else {
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watch_enable_digital_output(RED);
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watch_enable_digital_output(GREEN);
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}
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watch_set_led_off();
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}
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void watch_disable_led(bool pwm) {
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if (pwm) {
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if (!PWM_0_enabled) return;
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pwm_disable(&PWM_0);
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PWM_0_enabled = false;
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}
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watch_disable_digital_output(RED);
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watch_disable_digital_output(GREEN);
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}
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void watch_set_led_color(uint16_t red, uint16_t green) {
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if (PWM_0_enabled) {
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TC3->COUNT16.CC[0].reg = red;
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TC3->COUNT16.CC[1].reg = green;
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}
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}
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void watch_set_led_red() {
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if (PWM_0_enabled) {
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watch_set_led_color(65535, 0);
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} else {
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watch_set_pin_level(RED, true);
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watch_set_pin_level(GREEN, false);
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}
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}
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void watch_set_led_green() {
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if (PWM_0_enabled) {
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watch_set_led_color(65535, 0);
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} else {
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watch_set_pin_level(RED, false);
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watch_set_pin_level(GREEN, true);
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}
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}
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void watch_set_led_yellow() {
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if (PWM_0_enabled) {
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watch_set_led_color(65535, 65535);
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} else {
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watch_set_pin_level(RED, true);
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watch_set_pin_level(GREEN, true);
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}
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}
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void watch_set_led_off() {
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if (PWM_0_enabled) {
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watch_set_led_color(0, 0);
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} else {
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watch_set_pin_level(RED, false);
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watch_set_pin_level(GREEN, false);
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}
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}
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//////////////////////////////////////////////////////////////////////////////////////////
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// Buzzer
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inline void watch_enable_buzzer() {
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PWM_1_init();
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}
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inline void watch_set_buzzer_period(uint32_t period) {
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pwm_set_parameters(&PWM_1, period, period / 2);
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}
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inline void watch_set_buzzer_on() {
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pwm_enable(&PWM_1);
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}
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inline void watch_set_buzzer_off() {
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pwm_disable(&PWM_1);
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}
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const uint16_t NotePeriods[108] = {31047, 29301, 27649, 26079, 24617, 23224, 21923, 20683, 19515, 18418, 17377, 16399, 15477, 14603, 13780, 13004, 12272, 11580, 10926, 10311, 9730, 9181, 8664, 8175, 7714, 7280, 6869, 6483, 6117, 5772, 5447, 5140, 4850, 4577, 4319, 4076, 3846, 3629, 3425, 3232, 3050, 2878, 2715, 2562, 2418, 2282, 2153, 2032, 1917, 1809, 1707, 1611, 1520, 1435, 1354, 1277, 1205, 1137, 1073, 1013, 956, 902, 851, 803, 758, 715, 675, 637, 601, 567, 535, 505, 476, 450, 424, 400, 378, 357, 336, 317, 300, 283, 267, 252, 238, 224, 212, 200, 188, 178, 168, 158, 149, 141, 133, 125, 118, 112, 105, 99, 94, 89, 84, 79, 74, 70, 66, 63};
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void watch_buzzer_play_note(BuzzerNote note, uint16_t duration_ms) {
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if (note == BUZZER_NOTE_REST) {
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watch_set_buzzer_off();
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} else {
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pwm_set_parameters(&PWM_1, NotePeriods[note], NotePeriods[note] / 2);
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watch_set_buzzer_on();
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}
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delay_ms(duration_ms);
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watch_set_buzzer_off();
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}
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//////////////////////////////////////////////////////////////////////////////////////////
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// Real-time Clock
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bool _watch_rtc_is_enabled() {
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return RTC->MODE0.CTRLA.bit.ENABLE;
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}
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void watch_set_date_time(struct calendar_date_time date_time) {
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calendar_set_date(&CALENDAR_0, &date_time.date);
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calendar_set_time(&CALENDAR_0, &date_time.time);
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}
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void watch_get_date_time(struct calendar_date_time *date_time) {
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calendar_get_date_time(&CALENDAR_0, date_time);
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}
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void watch_register_tick_callback(ext_irq_cb_t callback) {
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_prescaler_register_callback(&CALENDAR_0.device, callback);
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}
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//////////////////////////////////////////////////////////////////////////////////////////
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// Analog Input
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static bool ADC_0_ENABLED = false;
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void watch_enable_analog(const uint8_t pin) {
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if (!ADC_0_ENABLED) ADC_0_init();
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ADC_0_ENABLED = true;
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gpio_set_pin_direction(pin, GPIO_DIRECTION_OFF);
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switch (pin) {
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case A0:
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gpio_set_pin_function(A0, PINMUX_PB04B_ADC_AIN12);
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break;
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case A1:
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gpio_set_pin_function(A1, PINMUX_PB01B_ADC_AIN9);
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break;
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case A2:
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gpio_set_pin_function(A2, PINMUX_PB02B_ADC_AIN10);
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break;
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default:
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return;
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}
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}
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//////////////////////////////////////////////////////////////////////////////////////////
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// Digital IO
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void watch_enable_digital_input(const uint8_t pin) {
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gpio_set_pin_direction(pin, GPIO_DIRECTION_IN);
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gpio_set_pin_function(pin, GPIO_PIN_FUNCTION_OFF);
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}
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void watch_enable_pull_up(const uint8_t pin) {
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gpio_set_pin_pull_mode(pin, GPIO_PULL_UP);
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}
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void watch_enable_pull_down(const uint8_t pin) {
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gpio_set_pin_pull_mode(pin, GPIO_PULL_DOWN);
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}
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bool watch_get_pin_level(const uint8_t pin) {
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return gpio_get_pin_level(pin);
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}
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void watch_enable_digital_output(const uint8_t pin) {
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gpio_set_pin_direction(pin, GPIO_DIRECTION_OUT);
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gpio_set_pin_function(pin, GPIO_PIN_FUNCTION_OFF);
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}
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void watch_disable_digital_output(const uint8_t pin) {
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gpio_set_pin_direction(pin, GPIO_DIRECTION_OFF);
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}
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void watch_set_pin_level(const uint8_t pin, const bool level) {
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gpio_set_pin_level(pin, level);
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}
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//////////////////////////////////////////////////////////////////////////////////////////
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// I2C
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struct io_descriptor *I2C_0_io;
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void watch_enable_i2c() {
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I2C_0_init();
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i2c_m_sync_get_io_descriptor(&I2C_0, &I2C_0_io);
|
||||
i2c_m_sync_enable(&I2C_0);
|
||||
}
|
||||
|
||||
void watch_i2c_send(int16_t addr, uint8_t *buf, uint16_t length) {
|
||||
i2c_m_sync_set_periphaddr(&I2C_0, addr, I2C_M_SEVEN);
|
||||
io_write(I2C_0_io, buf, length);
|
||||
}
|
||||
|
||||
void watch_i2c_receive(int16_t addr, uint8_t *buf, uint16_t length) {
|
||||
i2c_m_sync_set_periphaddr(&I2C_0, addr, I2C_M_SEVEN);
|
||||
io_read(I2C_0_io, buf, length);
|
||||
}
|
||||
|
||||
void watch_i2c_write8(int16_t addr, uint8_t reg, uint8_t data) {
|
||||
uint8_t buf[2];
|
||||
buf[0] = reg;
|
||||
buf[1] = data;
|
||||
|
||||
watch_i2c_send(addr, (uint8_t *)&buf, 2);
|
||||
}
|
||||
|
||||
uint8_t watch_i2c_read8(int16_t addr, uint8_t reg) {
|
||||
uint8_t data;
|
||||
|
||||
watch_i2c_send(addr, (uint8_t *)®, 1);
|
||||
watch_i2c_receive(addr, (uint8_t *)&data, 1);
|
||||
|
||||
return data;
|
||||
}
|
||||
|
||||
uint16_t watch_i2c_read16(int16_t addr, uint8_t reg) {
|
||||
uint16_t data;
|
||||
|
||||
watch_i2c_send(addr, (uint8_t *)®, 1);
|
||||
watch_i2c_receive(addr, (uint8_t *)&data, 2);
|
||||
|
||||
return data;
|
||||
}
|
||||
|
||||
uint32_t watch_i2c_read24(int16_t addr, uint8_t reg) {
|
||||
uint32_t data;
|
||||
data = 0;
|
||||
|
||||
watch_i2c_send(addr, (uint8_t *)®, 1);
|
||||
watch_i2c_receive(addr, (uint8_t *)&data, 3);
|
||||
|
||||
return data << 8;
|
||||
}
|
||||
|
||||
uint32_t watch_i2c_read32(int16_t addr, uint8_t reg) {
|
||||
uint32_t data;
|
||||
|
||||
watch_i2c_send(addr, (uint8_t *)®, 1);
|
||||
watch_i2c_receive(addr, (uint8_t *)&data, 4);
|
||||
|
||||
return data;
|
||||
}
|
||||
|
||||
//////////////////////////////////////////////////////////////////////////////////////////
|
||||
// Debug UART
|
||||
|
||||
/*
|
||||
* UART methods are Copyright (c) 2014-2017, Alex Taradov <alex@taradov.com>
|
||||
* All rights reserved.
|
||||
*
|
||||
* Redistribution and use in source and binary forms, with or without
|
||||
* modification, are permitted provided that the following conditions are met:
|
||||
*
|
||||
* 1. Redistributions of source code must retain the above copyright notice,
|
||||
* this list of conditions and the following disclaimer.
|
||||
* 2. Redistributions in binary form must reproduce the above copyright
|
||||
* notice, this list of conditions and the following disclaimer in the
|
||||
* documentation and/or other materials provided with the distribution.
|
||||
* 3. The name of the author may not be used to endorse or promote products
|
||||
* derived from this software without specific prior written permission.
|
||||
*
|
||||
* THIS SOFTWARE IS PROVIDED BY THE COPYRIGHT HOLDERS AND CONTRIBUTORS "AS IS"
|
||||
* AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
|
||||
* IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
|
||||
* ARE DISCLAIMED. IN NO EVENT SHALL THE COPYRIGHT HOLDER OR CONTRIBUTORS BE
|
||||
* LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
|
||||
* CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
|
||||
* SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
|
||||
* INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
|
||||
* CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
|
||||
* ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
|
||||
* POSSIBILITY OF SUCH DAMAGE.
|
||||
*/
|
||||
|
||||
void watch_enable_debug_uart(uint32_t baud) {
|
||||
uint64_t br = (uint64_t)65536 * (CONF_CPU_FREQUENCY - 16 * baud) / CONF_CPU_FREQUENCY;
|
||||
|
||||
gpio_set_pin_direction(D1, GPIO_DIRECTION_IN);
|
||||
gpio_set_pin_function(D1, PINMUX_PB00C_SERCOM3_PAD2);
|
||||
|
||||
MCLK->APBCMASK.reg |= MCLK_APBCMASK_SERCOM3;
|
||||
|
||||
GCLK->PCHCTRL[SERCOM3_GCLK_ID_CORE].reg = GCLK_PCHCTRL_GEN(0) | GCLK_PCHCTRL_CHEN;
|
||||
while (0 == (GCLK->PCHCTRL[SERCOM3_GCLK_ID_CORE].reg & GCLK_PCHCTRL_CHEN));
|
||||
|
||||
SERCOM3->USART.CTRLA.reg =
|
||||
SERCOM_USART_CTRLA_DORD | SERCOM_USART_CTRLA_MODE(1/*USART_INT_CLK*/) |
|
||||
SERCOM_USART_CTRLA_RXPO(0/*PAD0*/) | SERCOM_USART_CTRLA_TXPO(1/*PAD2*/);
|
||||
|
||||
SERCOM3->USART.CTRLB.reg = SERCOM_USART_CTRLB_RXEN | SERCOM_USART_CTRLB_TXEN |
|
||||
SERCOM_USART_CTRLB_CHSIZE(0/*8 bits*/);
|
||||
|
||||
SERCOM3->USART.BAUD.reg = (uint16_t)br;
|
||||
|
||||
SERCOM3->USART.CTRLA.reg |= SERCOM_USART_CTRLA_ENABLE;
|
||||
}
|
||||
|
||||
void watch_debug_putc(char c) {
|
||||
while (!(SERCOM3->USART.INTFLAG.reg & SERCOM_USART_INTFLAG_DRE));
|
||||
SERCOM3->USART.DATA.reg = c;
|
||||
}
|
||||
|
||||
void watch_debug_puts(char *s) {
|
||||
while (*s) watch_debug_putc(*s++);
|
||||
}
|
||||
|
||||
//////////////////////////////////////////////////////////////////////////////////////////
|
||||
// Deep Sleep
|
||||
|
||||
static void extwake_callback(uint8_t reason) {
|
||||
if (reason & RTC_TAMPID_TAMPID2) {
|
||||
if (btn_alarm_callback != NULL) btn_alarm_callback();
|
||||
} else if (reason & RTC_TAMPID_TAMPID1) {
|
||||
if (a2_callback != NULL) a2_callback();
|
||||
} else if (reason & RTC_TAMPID_TAMPID0) {
|
||||
if (d1_callback != NULL) d1_callback();
|
||||
}
|
||||
}
|
||||
|
||||
void watch_register_extwake_callback(uint8_t pin, ext_irq_cb_t callback) {
|
||||
uint32_t pinmux;
|
||||
if (pin == D1) {
|
||||
d1_callback = callback;
|
||||
pinmux = PINMUX_PB00G_RTC_IN0;
|
||||
} else if (pin == A2) {
|
||||
a2_callback = callback;
|
||||
pinmux = PINMUX_PB02G_RTC_IN1;
|
||||
} else {
|
||||
return;
|
||||
}
|
||||
gpio_set_pin_direction(pin, GPIO_DIRECTION_IN);
|
||||
gpio_set_pin_function(pin, pinmux);
|
||||
_extwake_register_callback(&CALENDAR_0.device, extwake_callback);
|
||||
}
|
||||
|
||||
void watch_store_backup_data(uint32_t data, uint8_t reg) {
|
||||
if (reg < 8) {
|
||||
RTC->MODE0.BKUP[reg].reg = data;
|
||||
}
|
||||
}
|
||||
|
||||
uint32_t watch_get_backup_data(uint8_t reg) {
|
||||
if (reg < 8) {
|
||||
return RTC->MODE0.BKUP[reg].reg;
|
||||
}
|
||||
|
||||
return 0;
|
||||
}
|
||||
|
||||
void watch_enter_deep_sleep() {
|
||||
// enable and configure the external wake interrupt, if not already set up.
|
||||
if (btn_alarm_callback == NULL && a2_callback == NULL && d1_callback == NULL) {
|
||||
gpio_set_pin_direction(BTN_ALARM, GPIO_DIRECTION_IN);
|
||||
gpio_set_pin_pull_mode(BTN_ALARM, GPIO_PULL_DOWN);
|
||||
gpio_set_pin_function(BTN_ALARM, PINMUX_PA02G_RTC_IN2);
|
||||
_extwake_register_callback(&CALENDAR_0.device, extwake_callback);
|
||||
}
|
||||
|
||||
// disable SLCD
|
||||
slcd_sync_deinit(&SEGMENT_LCD_0);
|
||||
hri_mclk_clear_APBCMASK_SLCD_bit(SLCD);
|
||||
|
||||
// TODO: disable other peripherals
|
||||
|
||||
// go into backup sleep mode
|
||||
sleep(5);
|
||||
}
|
||||
ext_irq_cb_t btn_alarm_callback;
|
||||
|
||||
#include "watch_rtc.c"
|
||||
#include "watch_slcd.c"
|
||||
#include "watch_extint.c"
|
||||
#include "watch_led.c"
|
||||
#include "watch_buzzer.c"
|
||||
#include "watch_adc.c"
|
||||
#include "watch_gpio.c"
|
||||
#include "watch_i2c.c"
|
||||
#include "watch_uart.c"
|
||||
#include "watch_deepsleep.c"
|
||||
#include "watch_private.c"
|
||||
|
||||
Reference in New Issue
Block a user