main.rs 9.5 KB

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  1. #![cfg_attr(test, allow(unused_imports))]
  2. #![cfg_attr(not(test), no_std)]
  3. #![cfg_attr(not(test), no_main)]
  4. #![feature(half_open_range_patterns)]
  5. #![feature(exclusive_range_pattern)]
  6. #![allow(dead_code)]
  7. // custom panic handler
  8. #[cfg(not(test))]
  9. use core::panic::PanicInfo;
  10. use core::{cell::RefCell, ops::DerefMut};
  11. use cortex_m::{interrupt::free, interrupt::Mutex, peripheral::NVIC};
  12. use cortex_m_rt::entry;
  13. use stm32l4xx_hal::{
  14. delay::Delay,
  15. device::{I2C1, TIM2},
  16. gpio::{
  17. Alternate, Edge, Floating, Input, OpenDrain, Output, PullUp, PushPull, AF4, PA3, PB5, PC15,
  18. },
  19. gpio::{State, PA10, PA9},
  20. i2c::I2c,
  21. interrupt, pac,
  22. prelude::*,
  23. rcc,
  24. stm32::Interrupt,
  25. timer::Timer,
  26. };
  27. mod ds3231;
  28. mod nixie;
  29. mod pca9685;
  30. mod tusb322;
  31. use nixie::*;
  32. static RTC_INT: Mutex<RefCell<Option<PB5<Input<Floating>>>>> = Mutex::new(RefCell::new(None));
  33. static FAULT_INT: Mutex<RefCell<Option<PA3<Input<PullUp>>>>> = Mutex::new(RefCell::new(None));
  34. static FAULT_LED: Mutex<RefCell<Option<PC15<Output<PushPull>>>>> = Mutex::new(RefCell::new(None));
  35. static I2C: Mutex<
  36. RefCell<
  37. Option<
  38. I2c<
  39. I2C1,
  40. (
  41. PA9<Alternate<AF4, Output<OpenDrain>>>,
  42. PA10<Alternate<AF4, Output<OpenDrain>>>,
  43. ),
  44. >,
  45. >,
  46. >,
  47. > = Mutex::new(RefCell::new(None));
  48. static REFRESH_TIMER: Mutex<RefCell<Option<Timer<TIM2>>>> = Mutex::new(RefCell::new(None));
  49. // unsafe fn any_as_u8_slice<T: Sized>(p: &T) -> &[u8] {
  50. // core::slice::from_raw_parts(
  51. // (p as *const T) as *const u8,
  52. // core::mem::size_of::<T>(),
  53. // )
  54. // }
  55. // pub fn concat<T: Copy + Default, const A: usize, const B: usize>(a: &[T; A], b: &[T; B]) -> [T; A+B] {
  56. // let mut whole: [T; A+B] = [Default::default(); A+B];
  57. // let (one, two) = whole.split_at_mut(A);
  58. // one.copy_from_slice(a);
  59. // two.copy_from_slice(b);
  60. // whole
  61. // }
  62. #[cfg(not(test))]
  63. #[entry]
  64. fn main() -> ! {
  65. // Acquire a singleton instance for the chip's peripherals
  66. let mut dp = pac::Peripherals::take().unwrap();
  67. let cp = pac::CorePeripherals::take().unwrap();
  68. // Consume the raw peripheral and return a new object that implements a higher level API
  69. let mut flash = dp.FLASH.constrain();
  70. let mut rcc = dp.RCC.constrain();
  71. let mut pwr = dp.PWR.constrain(&mut rcc.apb1r1);
  72. // Configure clocks to run at maximum frequency off internal oscillator
  73. let clocks = rcc
  74. .cfgr
  75. .pll_source(rcc::PllSource::HSI16)
  76. .sysclk(64.mhz())
  77. .hclk(64.mhz())
  78. .pclk1(64.mhz())
  79. .pclk2(64.mhz())
  80. .freeze(&mut flash.acr, &mut pwr);
  81. // Configure delay timer that operates off systick timer
  82. let mut delay_timer = Delay::new(cp.SYST, clocks);
  83. // Split GPIO peripheral into independent pins and registers
  84. let mut gpioa = dp.GPIOA.split(&mut rcc.ahb2);
  85. let mut gpiob = dp.GPIOB.split(&mut rcc.ahb2);
  86. let mut gpioc = dp.GPIOC.split(&mut rcc.ahb2);
  87. // Configure high voltage PSU enable pin on PA2
  88. let mut hv_enable =
  89. gpioa
  90. .pa2
  91. .into_push_pull_output_with_state(&mut gpioa.moder, &mut gpioa.otyper, State::Low);
  92. // Configure serial port
  93. // let tx = gpiob.pb6.into_af7(&mut gpiob.moder, &mut gpiob.afrl);
  94. // let rx = gpiob.pb7.into_af7(&mut gpiob.moder, &mut gpiob.afrl);
  95. // let _serial = Serial::usart1(
  96. // dp.USART1,
  97. // (tx, rx),
  98. // Config::default().baudrate(115_200.bps()),
  99. // clocks,
  100. // &mut rcc.apb2,
  101. // );
  102. // Configure fault LED output on PC15
  103. let fault_led = gpioc.pc15.into_push_pull_output_with_state(
  104. &mut gpioc.moder,
  105. &mut gpioc.otyper,
  106. State::Low,
  107. );
  108. // Store fault LED in static singleton so that interrupt has access to it
  109. free(|cs| {
  110. FAULT_LED.borrow(cs).replace(Some(fault_led));
  111. });
  112. // Configure fault input interrupt on PA3
  113. let mut fault_int = gpioa
  114. .pa3
  115. .into_pull_up_input(&mut gpioa.moder, &mut gpioa.pupdr);
  116. fault_int.make_interrupt_source(&mut dp.SYSCFG, &mut rcc.apb2);
  117. fault_int.enable_interrupt(&mut dp.EXTI);
  118. fault_int.trigger_on_edge(&mut dp.EXTI, Edge::FALLING);
  119. // Sanity check that fault pin isn't already set (active low) before enabling interrupt
  120. if fault_int.is_high().unwrap() {
  121. // Configure NVIC mask to enable interrupt source
  122. unsafe {
  123. NVIC::unmask(Interrupt::EXTI3);
  124. }
  125. // Store fault interrupt in static singleton so that interrupt has access to it
  126. free(|cs| {
  127. FAULT_INT.borrow(cs).replace(Some(fault_int));
  128. });
  129. } else {
  130. panic!();
  131. }
  132. // Configure I2C SCL
  133. let scl = gpioa
  134. .pa9
  135. .into_open_drain_output(&mut gpioa.moder, &mut gpioa.otyper);
  136. let scl = scl.into_af4(&mut gpioa.moder, &mut gpioa.afrh);
  137. // Configure I2C SDA
  138. let sda = gpioa
  139. .pa10
  140. .into_open_drain_output(&mut gpioa.moder, &mut gpioa.otyper);
  141. let sda = sda.into_af4(&mut gpioa.moder, &mut gpioa.afrh);
  142. // Initialize I2C (configured for 1Mhz, but actually runs at 600kHz)
  143. let mut i2c = I2c::i2c1(dp.I2C1, (scl, sda), 1.mhz(), clocks, &mut rcc.apb1r1);
  144. // Initialize TUSB322 (USB Type-C configuration chip)
  145. tusb322::init(TUSB322_ADDR, &mut i2c);
  146. // Initialize DS3231 (RTC)
  147. ds3231::init(DS3231_ADDR, &mut i2c);
  148. // Configure input interrupt pin from DS3231 on PB5
  149. // Interrupt is pulled high, with open drain on DS3231 to pull low
  150. let mut rtc_int = gpiob
  151. .pb5
  152. .into_floating_input(&mut gpiob.moder, &mut gpiob.pupdr);
  153. rtc_int.make_interrupt_source(&mut dp.SYSCFG, &mut rcc.apb2);
  154. rtc_int.enable_interrupt(&mut dp.EXTI);
  155. rtc_int.trigger_on_edge(&mut dp.EXTI, Edge::FALLING);
  156. // Configure NVIC mask to enable interrupt source
  157. unsafe {
  158. NVIC::unmask(Interrupt::EXTI9_5);
  159. }
  160. // Store RTC interrupt in static singleton so that interrupt has access to it
  161. free(|cs| {
  162. RTC_INT.borrow(cs).replace(Some(rtc_int));
  163. });
  164. // Configure DAC AMP enable pin for AD8591 on PB1
  165. let mut _dac_enable = gpiob.pb1.into_push_pull_output_with_state(
  166. &mut gpiob.moder,
  167. &mut gpiob.otyper,
  168. State::High,
  169. );
  170. // Configure DAC VIN for AD8591 on PA5
  171. // Note that this pin should actually be configured as analog output (for DAC)
  172. // but stm32l4xx_hal doesn't have support for the DAC as of now. We also currently
  173. // set the output to only the highest possible voltage, so the same functionality
  174. // can be achieved by configuring the pin as a digital output set to high.
  175. let mut _dac_output = gpioa.pa5.into_push_pull_output_with_state(
  176. &mut gpioa.moder,
  177. &mut gpioa.otyper,
  178. State::High,
  179. );
  180. // Configure PWM enable pin (active low) for PCA9685 on PA7
  181. let mut pwm_enable = gpioa.pa7.into_push_pull_output_with_state(
  182. &mut gpioa.moder,
  183. &mut gpioa.otyper,
  184. State::High,
  185. );
  186. // Initialize the PCA9685 display refresh timer
  187. let refresh_timer = Timer::tim2(
  188. dp.TIM2,
  189. nixie::REFRESH_RATE_HZ.hz(),
  190. clocks,
  191. &mut rcc.apb1r1,
  192. );
  193. // Configure NVIC mask to enable interrupt for TIM2
  194. unsafe { NVIC::unmask(Interrupt::TIM2) };
  195. // Save display refresh timer in static singleton so that interrupt has access to it
  196. free(|cs| {
  197. REFRESH_TIMER.borrow(cs).replace(Some(refresh_timer));
  198. });
  199. // Small delay to ensure that PCA9685 is fully powered on before writing to it
  200. delay_timer.delay_us(10_u32);
  201. // Initialize PCA9685 (PWM driver)
  202. pca9685::init(PCA9685_ALL_CALL, &mut i2c);
  203. // Enable PWM output after PCA9685 has been initialized
  204. pwm_enable.set_low().unwrap();
  205. // Store I2C peripheral in global static variable as it is used in interrupt
  206. free(|cs| {
  207. I2C.borrow(cs).replace(Some(i2c));
  208. });
  209. // Enable the high voltage power supply last
  210. hv_enable.set_high().unwrap();
  211. loop {}
  212. }
  213. fn set_fault_led(state: State) {
  214. free(|cs| {
  215. let mut led_ref = FAULT_LED.borrow(cs).borrow_mut();
  216. if let Some(ref mut led) = led_ref.deref_mut() {
  217. match state {
  218. State::High => led.set_high().unwrap(),
  219. State::Low => led.set_low().unwrap(),
  220. };
  221. }
  222. });
  223. }
  224. #[interrupt]
  225. fn EXTI9_5() {
  226. free(|cs| {
  227. let mut rtc_int_ref = RTC_INT.borrow(cs).borrow_mut();
  228. let mut i2c_int_ref = I2C.borrow(cs).borrow_mut();
  229. if let Some(ref mut rtc_int) = rtc_int_ref.deref_mut() {
  230. if let Some(ref mut i2c) = i2c_int_ref.deref_mut() {
  231. if rtc_int.check_interrupt() {
  232. nixie::rtc_interrupt(i2c);
  233. rtc_int.clear_interrupt_pending_bit();
  234. }
  235. }
  236. }
  237. });
  238. }
  239. #[interrupt]
  240. fn EXTI3() {
  241. free(|cs| {
  242. let mut nfault_ref = FAULT_INT.borrow(cs).borrow_mut();
  243. if let Some(ref mut nfault) = nfault_ref.deref_mut() {
  244. if nfault.check_interrupt() {
  245. nfault.clear_interrupt_pending_bit();
  246. panic!();
  247. }
  248. }
  249. });
  250. }
  251. #[interrupt]
  252. fn TIM2() {
  253. free(|cs| {
  254. let mut i2c_int_ref = I2C.borrow(cs).borrow_mut();
  255. if let Some(ref mut i2c) = i2c_int_ref.deref_mut() {
  256. nixie::refresh_interrupt(i2c);
  257. }
  258. });
  259. }
  260. #[panic_handler]
  261. #[cfg(not(test))]
  262. /// Custom panic handler
  263. fn panic(_info: &PanicInfo) -> ! {
  264. set_fault_led(State::High);
  265. loop {
  266. continue;
  267. }
  268. }