esp_hal/mcpwm/timer.rs
1//! # MCPWM Timer Module
2//!
3//! ## Overview
4//! The `timer` module provides an interface to configure and use timers for
5//! generating `PWM` signals used in motor control and other applications.
6
7use core::marker::PhantomData;
8
9use super::PeripheralGuard;
10use crate::{
11 mcpwm::{FrequencyError, PeripheralClockConfig, PwmClockGuard, PwmPeripheral},
12 pac,
13 time::Rate,
14};
15
16/// A MCPWM timer
17///
18/// Every timer of a particular [`MCPWM`](super::McPwm) peripheral can be used
19/// as a timing reference for every
20/// [`Operator`](super::operator::Operator) of that peripheral
21pub struct Timer<const TIM: u8, PWM> {
22 pub(super) phantom: PhantomData<PWM>,
23 _guard: PeripheralGuard,
24 _pwm_clock_guard: PwmClockGuard,
25}
26
27impl<const TIM: u8, PWM: PwmPeripheral> Timer<TIM, PWM> {
28 pub(super) fn new(guard: PeripheralGuard) -> Self {
29 Timer {
30 phantom: PhantomData,
31 _guard: guard,
32 _pwm_clock_guard: PwmClockGuard::new::<PWM>(),
33 }
34 }
35
36 /// Apply the given timer configuration.
37 ///
38 /// ### Note:
39 /// The prescaler and period configuration will be applied immediately by
40 /// default and before setting the [`PwmWorkingMode`].
41 /// If the timer is already running you might want to call [`Timer::stop`]
42 /// and/or [`Timer::set_counter`] first
43 /// (if the new period is larger than the current counter value this will
44 /// cause weird behavior).
45 ///
46 /// If configured via [`TimerClockConfig::with_period_updating_method`],
47 /// another behavior can be applied. Currently, only
48 /// [`PeriodUpdatingMethod::Immediately`]
49 /// and [`PeriodUpdatingMethod::TimerEqualsZero`] are useful as the sync
50 /// method is not yet implemented.
51 ///
52 /// The hardware supports writing these settings in sync with certain timer
53 /// events but this HAL does not expose these for now.
54 pub fn start(&mut self, timer_config: TimerClockConfig) {
55 // write prescaler and period with immediate update method
56 self.cfg0().write(|w| unsafe {
57 w.prescale().bits(timer_config.prescaler);
58 w.period().bits(timer_config.period);
59 w.period_upmethod()
60 .bits(timer_config.period_updating_method as u8)
61 });
62
63 // set timer to continuously run and set the timer working mode
64 self.cfg1().write(|w| unsafe {
65 w.start().bits(2);
66 w.mod_().bits(timer_config.mode as u8)
67 });
68 }
69
70 /// Stop the timer in its current state
71 pub fn stop(&mut self) {
72 // freeze the timer
73 self.cfg1().write(|w| unsafe { w.mod_().bits(0) });
74 }
75
76 /// Set the timer counter to the provided value
77 pub fn set_counter(&mut self, phase: u16, direction: CounterDirection) {
78 // SAFETY:
79 // We only write to our TIMERx_SYNC register
80 let tmr = unsafe { Self::tmr() };
81 let sw = tmr.sync().read().sw().bit_is_set();
82 tmr.sync().write(|w| {
83 w.phase_direction().bit(direction as u8 != 0);
84 unsafe {
85 w.phase().bits(phase);
86 }
87 w.sw().bit(!sw)
88 });
89 }
90
91 /// Read the counter value and counter direction of the timer
92 pub fn status(&self) -> (u16, CounterDirection) {
93 // SAFETY:
94 // We only read from our TIMERx_STATUS register
95 let reg = unsafe { Self::tmr() }.status().read();
96 (reg.value().bits(), reg.direction().bit_is_set().into())
97 }
98
99 fn cfg0(&mut self) -> &pac::mcpwm0::timer::CFG0 {
100 // SAFETY:
101 // We only grant access to our CFG0 register with the lifetime of &mut self
102 unsafe { Self::tmr() }.cfg0()
103 }
104
105 fn cfg1(&mut self) -> &pac::mcpwm0::timer::CFG1 {
106 // SAFETY:
107 // We only grant access to our CFG1 register with the lifetime of &mut self
108 unsafe { Self::tmr() }.cfg1()
109 }
110
111 unsafe fn tmr() -> &'static pac::mcpwm0::TIMER {
112 let block = unsafe { &*PWM::block() };
113 block.timer(TIM as usize)
114 }
115}
116
117/// Clock configuration of a MCPWM timer
118///
119/// Use [`PeripheralClockConfig::timer_clock_with_prescaler`](super::PeripheralClockConfig::timer_clock_with_prescaler) or
120/// [`PeripheralClockConfig::timer_clock_with_frequency`](super::PeripheralClockConfig::timer_clock_with_frequency) to it.
121#[derive(Copy, Clone)]
122pub struct TimerClockConfig {
123 frequency: Rate,
124 period: u16,
125 period_updating_method: PeriodUpdatingMethod,
126 prescaler: u8,
127 mode: PwmWorkingMode,
128}
129
130impl TimerClockConfig {
131 pub(super) fn with_prescaler(
132 clock: &PeripheralClockConfig,
133 period: u16,
134 mode: PwmWorkingMode,
135 prescaler: u8,
136 ) -> Self {
137 let cycle_period = match mode {
138 PwmWorkingMode::Increase | PwmWorkingMode::Decrease => period as u32 + 1,
139 // The reference manual seems to provide an incorrect formula for UpDown
140 PwmWorkingMode::UpDown => period as u32 * 2,
141 };
142 let frequency = clock.frequency / (prescaler as u32 + 1) / cycle_period;
143
144 TimerClockConfig {
145 frequency,
146 prescaler,
147 period,
148 period_updating_method: PeriodUpdatingMethod::Immediately,
149 mode,
150 }
151 }
152
153 pub(super) fn with_frequency(
154 clock: &PeripheralClockConfig,
155 period: u16,
156 mode: PwmWorkingMode,
157 target_freq: Rate,
158 ) -> Result<Self, FrequencyError> {
159 let cycle_period = match mode {
160 PwmWorkingMode::Increase | PwmWorkingMode::Decrease => period as u32 + 1,
161 // The reference manual seems to provide an incorrect formula for UpDown
162 PwmWorkingMode::UpDown => period as u32 * 2,
163 };
164 let target_timer_frequency = target_freq
165 .as_hz()
166 .checked_mul(cycle_period)
167 .ok_or(FrequencyError)?;
168 if target_timer_frequency == 0 || target_freq > clock.frequency {
169 return Err(FrequencyError);
170 }
171 let prescaler = (clock.frequency.as_hz() / target_timer_frequency)
172 .checked_sub(1)
173 .ok_or(FrequencyError)?;
174 if prescaler > u8::MAX as u32 {
175 return Err(FrequencyError);
176 }
177 let frequency = clock.frequency / (prescaler + 1) / cycle_period;
178
179 Ok(TimerClockConfig {
180 frequency,
181 prescaler: prescaler as u8,
182 period,
183 period_updating_method: PeriodUpdatingMethod::Immediately,
184 mode,
185 })
186 }
187
188 /// Set the method for updating the PWM period
189 pub fn with_period_updating_method(self, method: PeriodUpdatingMethod) -> Self {
190 Self {
191 period_updating_method: method,
192 ..self
193 }
194 }
195
196 /// Get the timer clock frequency.
197 ///
198 /// ### Note:
199 /// The actual value is rounded down to the nearest `u32` value
200 pub fn frequency(&self) -> Rate {
201 self.frequency
202 }
203}
204
205/// Method for updating the PWM period
206#[derive(Clone, Copy)]
207#[repr(u8)]
208pub enum PeriodUpdatingMethod {
209 /// The period is updated immediately.
210 Immediately = 0,
211 /// The period is updated when the timer equals zero.
212 TimerEqualsZero = 1,
213 /// The period is updated on a synchronization event.
214 Sync = 2,
215 /// The period is updated either when the timer equals zero or on a
216 /// synchronization event.
217 TimerEqualsZeroOrSync = 3,
218}
219
220/// PWM working mode
221#[derive(Copy, Clone)]
222#[repr(u8)]
223pub enum PwmWorkingMode {
224 /// In this mode, the PWM timer increments from zero until reaching the
225 /// value configured in the period field. Once done, the PWM timer
226 /// returns to zero and starts increasing again. PWM period is equal to the
227 /// value of the period field + 1.
228 Increase = 1,
229 /// The PWM timer decrements to zero, starting from the value configured in
230 /// the period field. After reaching zero, it is set back to the period
231 /// value. Then it starts to decrement again. In this case, the PWM period
232 /// is also equal to the value of period field + 1.
233 Decrease = 2,
234 /// This is a combination of the two modes mentioned above. The PWM timer
235 /// starts increasing from zero until the period value is reached. Then,
236 /// the timer decreases back to zero. This pattern is then repeated. The
237 /// PWM period is the result of the value of the period field × 2.
238 UpDown = 3,
239}
240
241/// The direction the timer counter is changing
242#[derive(Debug)]
243#[repr(u8)]
244pub enum CounterDirection {
245 /// The timer counter is increasing
246 Increasing = 0,
247 /// The timer counter is decreasing
248 Decreasing = 1,
249}
250
251impl From<bool> for CounterDirection {
252 fn from(bit: bool) -> Self {
253 match bit {
254 false => CounterDirection::Increasing,
255 true => CounterDirection::Decreasing,
256 }
257 }
258}