dsp: use num
This commit is contained in:
parent
1239a29904
commit
9983fad041
36
Cargo.lock
generated
36
Cargo.lock
generated
@ -356,6 +356,7 @@ dependencies = [
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"generic-array 0.14.4",
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"libm",
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"ndarray",
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"num",
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"rand",
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"serde",
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]
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@ -623,6 +624,19 @@ dependencies = [
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"rawpointer",
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]
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[[package]]
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name = "num"
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version = "0.3.1"
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source = "registry+https://github.com/rust-lang/crates.io-index"
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checksum = "8b7a8e9be5e039e2ff869df49155f1c06bd01ade2117ec783e56ab0932b67a8f"
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dependencies = [
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"num-complex",
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"num-integer",
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"num-iter",
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"num-rational",
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"num-traits",
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]
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[[package]]
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name = "num-complex"
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version = "0.3.1"
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@ -642,6 +656,28 @@ dependencies = [
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"num-traits",
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]
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[[package]]
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name = "num-iter"
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version = "0.1.42"
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source = "registry+https://github.com/rust-lang/crates.io-index"
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checksum = "b2021c8337a54d21aca0d59a92577a029af9431cb59b909b03252b9c164fad59"
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dependencies = [
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"autocfg",
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"num-integer",
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"num-traits",
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]
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[[package]]
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name = "num-rational"
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version = "0.3.2"
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source = "registry+https://github.com/rust-lang/crates.io-index"
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checksum = "12ac428b1cb17fce6f731001d307d351ec70a6d202fc2e60f7d4c5e42d8f4f07"
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dependencies = [
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"autocfg",
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"num-integer",
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"num-traits",
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]
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[[package]]
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name = "num-traits"
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version = "0.2.14"
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@ -8,6 +8,7 @@ edition = "2018"
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libm = "0.2.1"
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serde = { version = "1.0", features = ["derive"], default-features = false }
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generic-array = "0.14"
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num = { version = "0.3.1", default-features = false }
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[dev-dependencies]
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criterion = "0.3"
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@ -1,8 +1,6 @@
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use core::f32::consts::PI;
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use criterion::{black_box, criterion_group, criterion_main, Criterion};
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use dsp::{atan2, cossin};
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use dsp::{iir, iir_int};
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use dsp::{pll::PLL, rpll::RPLL};
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use dsp::{atan2, cossin, iir, iir_int, PLL, RPLL};
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fn atan2_bench(c: &mut Criterion) {
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let xi = (10 << 16) as i32;
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@ -1,33 +1,41 @@
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use core::ops::Mul;
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pub use num::Complex;
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use super::{atan2, cossin};
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#[derive(Copy, Clone, Default, PartialEq, Debug)]
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pub struct Complex<T>(pub T, pub T);
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pub trait Map<F> {
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fn map(&self, func: F) -> Self;
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}
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impl<T: Copy> Complex<T> {
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pub fn map<F>(&self, func: F) -> Self
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where
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F: Fn(T) -> T,
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{
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Complex(func(self.0), func(self.1))
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impl<F: Fn(T) -> T, T: Copy> Map<F> for Complex<T> {
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fn map(&self, func: F) -> Self {
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Complex {
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re: func(self.re),
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im: func(self.im),
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}
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}
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}
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impl Complex<i32> {
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pub trait FastInt<T, U> {
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fn from_angle(angle: T) -> Self;
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fn abs_sqr(&self) -> U;
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fn log2(&self) -> T;
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fn arg(&self) -> T;
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}
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impl FastInt<i32, u32> for Complex<i32> {
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/// Return a Complex on the unit circle given an angle.
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///
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/// Example:
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///
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/// ```
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/// use dsp::Complex;
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/// use dsp::{Complex, FastInt};
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/// Complex::<i32>::from_angle(0);
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/// Complex::<i32>::from_angle(1 << 30); // pi/2
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/// Complex::<i32>::from_angle(-1 << 30); // -pi/2
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/// ```
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pub fn from_angle(angle: i32) -> Self {
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fn from_angle(angle: i32) -> Self {
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let (c, s) = cossin(angle);
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Self(c, s)
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Self { re: c, im: s }
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}
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/// Return the absolute square (the squared magnitude).
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@ -39,13 +47,13 @@ impl Complex<i32> {
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/// Example:
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///
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/// ```
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/// use dsp::Complex;
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/// assert_eq!(Complex(i32::MIN, 0).abs_sqr(), 1 << 31);
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/// assert_eq!(Complex(i32::MAX, i32::MAX).abs_sqr(), u32::MAX - 3);
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/// use dsp::{Complex, FastInt};
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/// assert_eq!(Complex::new(i32::MIN, 0).abs_sqr(), 1 << 31);
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/// assert_eq!(Complex::new(i32::MAX, i32::MAX).abs_sqr(), u32::MAX - 3);
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/// ```
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pub fn abs_sqr(&self) -> u32 {
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(((self.0 as i64) * (self.0 as i64)
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+ (self.1 as i64) * (self.1 as i64))
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fn abs_sqr(&self) -> u32 {
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(((self.re as i64) * (self.re as i64)
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+ (self.im as i64) * (self.im as i64))
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>> 31) as u32
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}
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@ -59,15 +67,15 @@ impl Complex<i32> {
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/// Example:
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///
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/// ```
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/// use dsp::Complex;
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/// assert_eq!(Complex(i32::MAX, i32::MAX).log2(), -1);
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/// assert_eq!(Complex(i32::MAX, 0).log2(), -2);
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/// assert_eq!(Complex(1, 0).log2(), -63);
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/// assert_eq!(Complex(0, 0).log2(), -64);
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/// use dsp::{Complex, FastInt};
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/// assert_eq!(Complex::new(i32::MAX, i32::MAX).log2(), -1);
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/// assert_eq!(Complex::new(i32::MAX, 0).log2(), -2);
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/// assert_eq!(Complex::new(1, 0).log2(), -63);
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/// assert_eq!(Complex::new(0, 0).log2(), -64);
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/// ```
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pub fn log2(&self) -> i32 {
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let a = (self.0 as i64) * (self.0 as i64)
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+ (self.1 as i64) * (self.1 as i64);
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fn log2(&self) -> i32 {
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let a = (self.re as i64) * (self.re as i64)
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+ (self.im as i64) * (self.im as i64);
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-(a.leading_zeros() as i32)
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}
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@ -78,52 +86,50 @@ impl Complex<i32> {
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/// Example:
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///
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/// ```
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/// use dsp::Complex;
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/// assert_eq!(Complex(1, 0).arg(), 0);
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/// assert_eq!(Complex(-i32::MAX, 1).arg(), i32::MAX);
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/// assert_eq!(Complex(-i32::MAX, -1).arg(), -i32::MAX);
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/// assert_eq!(Complex(0, -1).arg(), -i32::MAX >> 1);
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/// assert_eq!(Complex(0, 1).arg(), (i32::MAX >> 1) + 1);
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/// assert_eq!(Complex(1, 1).arg(), (i32::MAX >> 2) + 1);
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/// use dsp::{Complex, FastInt};
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/// assert_eq!(Complex::new(1, 0).arg(), 0);
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/// assert_eq!(Complex::new(-i32::MAX, 1).arg(), i32::MAX);
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/// assert_eq!(Complex::new(-i32::MAX, -1).arg(), -i32::MAX);
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/// assert_eq!(Complex::new(0, -1).arg(), -i32::MAX >> 1);
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/// assert_eq!(Complex::new(0, 1).arg(), (i32::MAX >> 1) + 1);
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/// assert_eq!(Complex::new(1, 1).arg(), (i32::MAX >> 2) + 1);
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/// ```
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pub fn arg(&self) -> i32 {
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atan2(self.1, self.0)
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fn arg(&self) -> i32 {
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atan2(self.im, self.re)
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}
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}
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impl Mul for Complex<i32> {
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type Output = Self;
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pub trait MulScaled<T> {
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fn mul_scaled(self, other: T) -> Self;
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}
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fn mul(self, other: Self) -> Self {
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let a = self.0 as i64;
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let b = self.1 as i64;
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let c = other.0 as i64;
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let d = other.1 as i64;
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Complex(
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((a * c - b * d + (1 << 31)) >> 32) as i32,
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((b * c + a * d + (1 << 31)) >> 32) as i32,
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)
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impl MulScaled<Complex<i32>> for Complex<i32> {
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fn mul_scaled(self, other: Self) -> Self {
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let a = self.re as i64;
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let b = self.im as i64;
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let c = other.re as i64;
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let d = other.im as i64;
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Complex {
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re: ((a * c - b * d + (1 << 31)) >> 32) as i32,
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im: ((b * c + a * d + (1 << 31)) >> 32) as i32,
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}
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}
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}
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impl Mul<i32> for Complex<i32> {
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type Output = Self;
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fn mul(self, other: i32) -> Self {
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Complex(
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((other as i64 * self.0 as i64 + (1 << 31)) >> 32) as i32,
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((other as i64 * self.1 as i64 + (1 << 31)) >> 32) as i32,
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)
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impl MulScaled<i32> for Complex<i32> {
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fn mul_scaled(self, other: i32) -> Self {
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Complex {
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re: ((other as i64 * self.re as i64 + (1 << 31)) >> 32) as i32,
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im: ((other as i64 * self.im as i64 + (1 << 31)) >> 32) as i32,
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}
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}
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}
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impl Mul<i16> for Complex<i32> {
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type Output = Self;
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fn mul(self, other: i16) -> Self {
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Complex(
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(other as i32 * (self.0 >> 16) + (1 << 15)) >> 16,
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(other as i32 * (self.1 >> 16) + (1 << 15)) >> 16,
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)
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impl MulScaled<i16> for Complex<i32> {
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fn mul_scaled(self, other: i16) -> Self {
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Complex {
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re: (other as i32 * (self.re >> 16) + (1 << 15)) >> 16,
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im: (other as i32 * (self.im >> 16) + (1 << 15)) >> 16,
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}
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}
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}
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#[cfg(test)]
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mod tests {
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use super::*;
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use crate::Complex;
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use core::f64::consts::PI;
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#[test]
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@ -82,11 +81,11 @@ mod tests {
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// Constant amplitude error due to LUT data range.
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const AMPLITUDE: f64 = ((1i64 << 31) - (1i64 << 15)) as _;
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const MAX_PHASE: f64 = (1i64 << 32) as _;
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let mut rms_err = Complex(0f64, 0f64);
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let mut sum_err = Complex(0f64, 0f64);
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let mut max_err = Complex(0f64, 0f64);
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let mut sum = Complex(0f64, 0f64);
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let mut demod = Complex(0f64, 0f64);
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let mut rms_err = (0f64, 0f64);
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let mut sum_err = (0f64, 0f64);
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let mut max_err = (0f64, 0f64);
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let mut sum = (0f64, 0f64);
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let mut demod = (0f64, 0f64);
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// use std::{fs::File, io::{BufWriter, prelude::*}, path::Path};
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// let mut file = BufWriter::new(File::create(Path::new("data.bin")).unwrap());
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.fold(y0, |y, xa| y + xa)
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}
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pub mod accu;
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mod atan2;
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pub use atan2::*;
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mod accu;
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pub use accu::*;
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mod complex;
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pub use complex::*;
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mod cossin;
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pub use cossin::*;
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pub mod iir;
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pub mod iir_int;
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pub mod lockin;
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pub mod lowpass;
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pub mod pll;
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pub mod rpll;
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pub mod unwrap;
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pub use accu::Accu;
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pub use atan2::atan2;
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pub use complex::Complex;
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pub use cossin::cossin;
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mod lockin;
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pub use lockin::*;
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mod lowpass;
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pub use lowpass::*;
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mod pll;
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pub use pll::*;
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mod rpll;
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pub use rpll::*;
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mod unwrap;
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pub use unwrap::*;
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#[cfg(test)]
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pub mod testing;
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@ -1,4 +1,4 @@
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use super::{lowpass::Lowpass, Complex};
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use super::{Complex, FastInt, Lowpass, MulScaled};
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use generic_array::typenum::U2;
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#[derive(Clone, Default)]
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@ -10,17 +10,14 @@ impl Lockin {
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/// Update the lockin with a sample taken at a given phase.
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/// The lowpass has a gain of `1 << k`.
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pub fn update(&mut self, sample: i16, phase: i32, k: u8) -> Complex<i32> {
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// Get the LO signal for demodulation.
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let lo = Complex::from_angle(phase);
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// Mix with the LO signal
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let mix = lo * sample;
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// Get the LO signal for demodulation and mix the sample;
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let mix = Complex::from_angle(phase).mul_scaled(sample);
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// Filter with the IIR lowpass,
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// return IQ (in-phase and quadrature) data.
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Complex(
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self.state[0].update(mix.0, k),
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self.state[1].update(mix.1, k),
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)
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Complex {
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re: self.state[0].update(mix.re, k),
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im: self.state[1].update(mix.im, k),
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}
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}
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}
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@ -31,7 +31,7 @@ pub fn complex_isclose(
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rtol: f32,
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atol: f32,
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) -> bool {
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isclosef(a.0, b.0, rtol, atol) && isclosef(a.1, b.1, rtol, atol)
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isclosef(a.re, b.re, rtol, atol) && isclosef(a.im, b.im, rtol, atol)
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}
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pub fn complex_allclose(
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@ -6,7 +6,7 @@ use stm32h7xx_hal as hal;
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use stabilizer::{hardware, hardware::design_parameters};
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use dsp::{lockin::Lockin, rpll::RPLL, Accu};
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use dsp::{Accu, FastInt, Lockin, RPLL};
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use hardware::{
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Adc0Input, Adc1Input, Dac0Output, Dac1Output, InputStamper, AFE0, AFE1,
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};
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@ -127,7 +127,7 @@ const APP: () = {
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// Convert from IQ to power and phase.
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"power_phase" => [(output.log2() << 24) as _, output.arg()],
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"frequency_discriminator" => [pll_frequency as _, output.arg()],
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_ => [output.0, output.1],
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_ => [output.re, output.im],
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};
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// Convert to DAC data.
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@ -2,7 +2,7 @@
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#![no_std]
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#![no_main]
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use dsp::{lockin::Lockin, Accu};
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use dsp::{Accu, FastInt, Lockin};
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use hardware::{Adc1Input, Dac0Output, Dac1Output, AFE0, AFE1};
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use stabilizer::{hardware, hardware::design_parameters};
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