Add filter_2d
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use crate::base::DMatrix;
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use crate::storage::Storage;
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use crate::{Dim, Dynamic, Matrix, Scalar};
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use num::Zero;
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use std::ops::{AddAssign, Mul};
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impl<N, R1, C1, SA> Matrix<N, R1, C1, SA>
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where
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N: Scalar + Zero + AddAssign + Mul<Output = N> + Copy,
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R1: Dim,
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C1: Dim,
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SA: Storage<N, R1, C1>,
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{
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/// Returns the convolution of the target matrix and a kernel.
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///
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/// # Arguments
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///
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/// * `kernel` - A Matrix with size > 0
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///
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/// # Errors
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/// Inputs must satisfy `matrix.len() >= matrix.len() > 0`.
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///
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pub fn filter_2d<R2, C2, SB>(&self, kernel: Matrix<N, R2, C2, SB>) -> DMatrix<N>
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where
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R2: Dim,
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C2: Dim,
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SB: Storage<N, R2, C2>,
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{
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let mat_shape = self.shape();
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let ker_shape = kernel.shape();
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if ker_shape == (0, 0) || ker_shape > mat_shape {
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panic!("filter_2d expects `self.shape() >= kernel.shape() > 0`, received {:?} and {:?} respectively.", mat_shape, ker_shape);
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}
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let result_shape = (mat_shape.0 - ker_shape.0 + 1, mat_shape.1 - ker_shape.1 + 1);
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let mut conv = DMatrix::zeros_generic(
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Dynamic::from_usize(result_shape.0),
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Dynamic::from_usize(result_shape.1),
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);
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// TODO: optimize
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for i in 0..(result_shape.0) {
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for j in 0..(result_shape.1) {
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for k in 0..(ker_shape.0) {
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for l in 0..(ker_shape.1) {
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conv[(i, j)] += self[(i + k, j + l)] * kernel[(k, l)]
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}
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}
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}
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}
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conv
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}
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}
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@ -0,0 +1 @@
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mod kernel;
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@ -4,3 +4,5 @@ mod alga;
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mod glam;
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#[cfg(feature = "mint")]
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mod mint;
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mod image;
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@ -22,6 +22,7 @@ mod linalg;
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#[cfg(feature = "proptest-support")]
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mod proptest;
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mod third_party;
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//#[cfg(feature = "sparse")]
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//mod sparse;
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@ -0,0 +1,16 @@
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use na::{Matrix3, MatrixMN, U10, U8};
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use std::panic;
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#[test]
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fn image_convolve_check() {
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// Static Tests
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let expect = MatrixMN::<usize, U8, U8>::from_element(18);
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let src = MatrixMN::<usize, U10, U10>::from_element(2);
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let kernel = Matrix3::<usize>::from_element(1);
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let result = src.filter_2d(kernel);
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println!("src: {}", src);
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println!("ker: {}", kernel);
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println!("res: {}", result);
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assert_eq!(result, expect);
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}
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@ -0,0 +1 @@
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mod kernel;
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@ -0,0 +1 @@
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mod image;
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