use image::{Rgb, RgbImage};
fn area_weights(src: usize, dst: usize, scale: f64) -> Vec<Vec<(usize, f64)>> {
(0..dst)
.map(|d| {
let f1 = d as f64 * scale;
let f2 = (d + 1) as f64 * scale;
let s1 = f1.floor() as usize;
let s2 = (f2.ceil() as usize).min(src);
(s1..s2)
.map(|si| {
let w = (((si + 1) as f64).min(f2) - (si as f64).max(f1)) / scale;
(si, w)
})
.collect()
})
.collect()
}
pub fn inter_area(src: &RgbImage, dw: u32, dh: u32) -> RgbImage {
let (sw, sh) = (src.width() as usize, src.height() as usize);
let (dwu, dhu) = (dw as usize, dh as usize);
let hw = area_weights(sw, dwu, sw as f64 / dw as f64);
let vw = area_weights(sh, dhu, sh as f64 / dh as f64);
let mut tmp = vec![[0f64; 3]; sh * dwu]; for y in 0..sh {
let row = y * dwu;
for (dx, ws) in hw.iter().enumerate() {
let mut acc = [0f64; 3];
for &(si, w) in ws {
let p = src.get_pixel(si as u32, y as u32);
acc[0] += p[0] as f64 * w;
acc[1] += p[1] as f64 * w;
acc[2] += p[2] as f64 * w;
}
tmp[row + dx] = acc;
}
}
let mut out = RgbImage::new(dw, dh);
for (dy, ws) in vw.iter().enumerate() {
for dx in 0..dwu {
let mut acc = [0f64; 3];
for &(si, w) in ws {
let t = tmp[si * dwu + dx];
acc[0] += t[0] * w;
acc[1] += t[1] * w;
acc[2] += t[2] * w;
}
out.put_pixel(
dx as u32,
dy as u32,
Rgb([round_u8(acc[0]), round_u8(acc[1]), round_u8(acc[2])]),
);
}
}
out
}
fn round_u8(v: f64) -> u8 {
v.round().clamp(0.0, 255.0) as u8
}
const PIL_PRECISION_BITS: i32 = 22;
#[derive(Clone, Copy)]
pub enum PilFilter {
Bilinear,
Bicubic,
}
impl PilFilter {
fn support(self) -> f64 {
match self {
Self::Bilinear => 1.0,
Self::Bicubic => 2.0,
}
}
fn eval(self, x: f64) -> f64 {
match self {
Self::Bilinear => {
let x = x.abs();
if x < 1.0 {
1.0 - x
} else {
0.0
}
}
Self::Bicubic => {
const A: f64 = -0.5;
let x = x.abs();
if x < 1.0 {
((A + 2.0) * x - (A + 3.0)) * x * x + 1.0
} else if x < 2.0 {
(((x - 5.0) * x + 8.0) * x - 4.0) * A
} else {
0.0
}
}
}
}
}
fn pil_coeffs(in_size: usize, out_size: usize, filter: PilFilter) -> Vec<(usize, Vec<i32>)> {
let scale = in_size as f64 / out_size as f64;
let filterscale = scale.max(1.0);
let support = filter.support() * filterscale;
let ss = 1.0 / filterscale;
(0..out_size)
.map(|xx| {
let center = (xx as f64 + 0.5) * scale;
let xmin = ((center - support + 0.5) as i64).max(0) as usize;
let xmax = (((center + support + 0.5) as i64).min(in_size as i64) as usize) - xmin;
let mut k: Vec<f64> = (0..xmax)
.map(|x| filter.eval(((x + xmin) as f64 - center + 0.5) * ss))
.collect();
let ww: f64 = k.iter().sum();
if ww != 0.0 {
for w in &mut k {
*w /= ww;
}
}
let quant: Vec<i32> = k
.iter()
.map(|&w| {
let s = w * f64::from(1i32 << PIL_PRECISION_BITS);
if s < 0.0 {
(s - 0.5) as i32
} else {
(s + 0.5) as i32
}
})
.collect();
(xmin, quant)
})
.collect()
}
fn pil_clip8(v: i32) -> u8 {
(v >> PIL_PRECISION_BITS).clamp(0, 255) as u8
}
pub fn pil_resize(src: &RgbImage, dw: u32, dh: u32, filter: PilFilter) -> RgbImage {
let (sw, sh) = (src.width() as usize, src.height() as usize);
let (dwu, dhu) = (dw as usize, dh as usize);
let bias = 1i32 << (PIL_PRECISION_BITS - 1);
let hpass: RgbImage = if dwu != sw {
let coeffs = pil_coeffs(sw, dwu, filter);
let mut out = RgbImage::new(dw, sh as u32);
for y in 0..sh {
for (xx, (xmin, k)) in coeffs.iter().enumerate() {
let mut acc = [bias; 3];
for (x, &w) in k.iter().enumerate() {
let p = src.get_pixel((xmin + x) as u32, y as u32);
acc[0] += i32::from(p[0]) * w;
acc[1] += i32::from(p[1]) * w;
acc[2] += i32::from(p[2]) * w;
}
out.put_pixel(
xx as u32,
y as u32,
Rgb([pil_clip8(acc[0]), pil_clip8(acc[1]), pil_clip8(acc[2])]),
);
}
}
out
} else {
src.clone()
};
if dhu == sh {
return hpass;
}
let coeffs = pil_coeffs(sh, dhu, filter);
let mut out = RgbImage::new(dw, dh);
for (yy, (ymin, k)) in coeffs.iter().enumerate() {
for x in 0..dwu {
let mut acc = [bias; 3];
for (y, &w) in k.iter().enumerate() {
let p = hpass.get_pixel(x as u32, (ymin + y) as u32);
acc[0] += i32::from(p[0]) * w;
acc[1] += i32::from(p[1]) * w;
acc[2] += i32::from(p[2]) * w;
}
out.put_pixel(
x as u32,
yy as u32,
Rgb([pil_clip8(acc[0]), pil_clip8(acc[1]), pil_clip8(acc[2])]),
);
}
}
out
}
#[cfg(test)]
mod pil_tests {
use super::*;
fn lcg_image(w: u32, h: u32) -> RgbImage {
let mut state = 0x2545f491u64;
let mut next = || {
state = state
.wrapping_mul(6364136223846793005)
.wrapping_add(1442695040888963407);
(state >> 33) as u8
};
let mut img = RgbImage::new(w, h);
for y in 0..h {
for x in 0..w {
img.put_pixel(x, y, Rgb([next(), next(), next()]));
}
}
img
}
fn fnv1a(bytes: &[u8]) -> u64 {
let mut h = 0xcbf29ce484222325u64;
for &b in bytes {
h ^= u64::from(b);
h = h.wrapping_mul(0x100000001b3);
}
h
}
#[test]
fn matches_pillow_reference_hashes() {
let img = lcg_image(61, 47);
for (dw, dh, filter, want) in [
(40u32, 30u32, PilFilter::Bilinear, PIL_HASH_BILINEAR_DOWN),
(97, 83, PilFilter::Bilinear, PIL_HASH_BILINEAR_UP),
(40, 30, PilFilter::Bicubic, PIL_HASH_BICUBIC_DOWN),
(97, 83, PilFilter::Bicubic, PIL_HASH_BICUBIC_UP),
(640, 640, PilFilter::Bilinear, PIL_HASH_BILINEAR_640),
] {
let out = pil_resize(&img, dw, dh, filter);
assert_eq!(
fnv1a(out.as_raw()),
want,
"PIL mismatch at {dw}x{dh} {:?}",
match filter {
PilFilter::Bilinear => "bilinear",
PilFilter::Bicubic => "bicubic",
}
);
}
}
const PIL_HASH_BILINEAR_DOWN: u64 = 0x2ac8262283746b4c;
const PIL_HASH_BILINEAR_UP: u64 = 0x031c9b4dae3ce142;
const PIL_HASH_BICUBIC_DOWN: u64 = 0xb450da21946e06c3;
const PIL_HASH_BICUBIC_UP: u64 = 0xc3134a9cff63718d;
const PIL_HASH_BILINEAR_640: u64 = 0x967d65f732845b9f;
}