forked from M-Labs/thermostat
switch pid+steinhart_hart parameters from f32 to f64
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1ad821299b
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0f4442b124
@ -1,4 +1,5 @@
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use core::fmt;
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use lexical_core::Float;
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use stm32f4xx_hal::{
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time::{MegaHertz, U32Ext},
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spi,
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@ -146,18 +147,9 @@ impl PostFilter {
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];
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pub fn closest(rate: f32) -> Option<Self> {
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/// (x - y).abs()
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fn d(x: f32, y: f32) -> f32 {
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if x >= y {
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x - y
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} else {
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y - x
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}
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}
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let mut best: Option<(f32, Self)> = None;
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for value in Self::VALID_VALUES {
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let error = d(rate, value.output_rate().unwrap());
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let error = (rate - value.output_rate().unwrap()).abs();
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let better = best
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.map(|(best_error, _)| error < best_error)
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.unwrap_or(true);
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@ -123,12 +123,12 @@ pub enum Command {
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Pid {
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channel: usize,
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parameter: PidParameter,
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value: f32,
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value: f64,
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},
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SteinhartHart {
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channel: usize,
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parameter: ShParameter,
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value: f32,
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value: f64,
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},
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PostFilter {
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channel: usize,
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@ -158,12 +158,12 @@ fn unsigned(input: &[u8]) -> IResult<&[u8], Result<u16, Error>> {
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})
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}
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fn float(input: &[u8]) -> IResult<&[u8], Result<f32, Error>> {
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fn float(input: &[u8]) -> IResult<&[u8], Result<f64, Error>> {
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let (input, sign) = opt(is_a("-"))(input)?;
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let negative = sign.is_some();
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let (input, digits) = take_while1(|c| is_digit(c) || c == '.' as u8)(input)?;
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let result = lexical::parse(digits)
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.map(|result: f32| if negative { -result } else { result })
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.map(|result: f64| if negative { -result } else { result })
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.map_err(|e| e.into());
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Ok((input, result))
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}
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@ -357,7 +357,8 @@ fn postfilter(input: &[u8]) -> IResult<&[u8], Result<Command, Error>> {
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let (input, rate) = float(input)?;
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let result = rate
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.map(|rate| Command::PostFilter {
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channel, rate,
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channel,
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rate: rate as f32,
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});
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Ok((input, result))
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}
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32
src/pid.rs
32
src/pid.rs
@ -1,20 +1,20 @@
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#[derive(Clone, Copy)]
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pub struct Parameters {
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pub kp: f32,
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pub ki: f32,
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pub kd: f32,
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pub output_min: f32,
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pub output_max: f32,
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pub integral_min: f32,
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pub integral_max: f32
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pub kp: f64,
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pub ki: f64,
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pub kd: f64,
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pub output_min: f64,
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pub output_max: f64,
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pub integral_min: f64,
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pub integral_max: f64
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}
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#[derive(Clone)]
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pub struct Controller {
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parameters: Parameters,
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target: f32,
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integral: f32,
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last_input: Option<f32>
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target: f64,
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integral: f64,
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last_input: Option<f64>
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}
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impl Controller {
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@ -27,7 +27,7 @@ impl Controller {
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}
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}
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pub fn update(&mut self, input: f32) -> f32 {
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pub fn update(&mut self, input: f64) -> f64 {
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let error = self.target - input;
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let p = self.parameters.kp * error;
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@ -57,11 +57,11 @@ impl Controller {
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output
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}
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pub fn get_target(&self) -> f32 {
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pub fn get_target(&self) -> f64 {
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self.target
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}
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pub fn set_target(&mut self, target: f32) {
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pub fn set_target(&mut self, target: f64) {
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self.target = target;
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}
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@ -96,9 +96,9 @@ mod test {
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#[test]
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fn test_controller() {
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const DEFAULT: f32 = 0.0;
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const TARGET: f32 = 1234.56;
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const ERROR: f32 = 0.01;
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const DEFAULT: f64 = 0.0;
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const TARGET: f64 = 1234.56;
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const ERROR: f64 = 0.01;
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const DELAY: usize = 10;
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let mut pid = Controller::new(PARAMETERS.clone());
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@ -3,14 +3,14 @@ use lexical_core::Float;
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/// Steinhart-Hart equation parameters
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#[derive(Clone, Debug)]
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pub struct Parameters {
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pub a: f32,
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pub b: f32,
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pub c: f32,
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pub a: f64,
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pub b: f64,
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pub c: f64,
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/// Parallel resistance
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///
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/// Not truly part of the equation but required to calculate
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/// resistance from voltage.
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pub parallel_r: f32,
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pub parallel_r: f64,
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}
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impl Parameters {
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@ -19,7 +19,7 @@ impl Parameters {
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/// Result unit: Kelvin
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///
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/// TODO: verify
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pub fn get_temperature(&self, voltage: f32) -> f32 {
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pub fn get_temperature(&self, voltage: f64) -> f64 {
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let r = self.parallel_r * voltage;
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let ln_r = r.abs().ln();
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let inv_temp = self.a +
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