1#[cfg(not(feature = "std"))]
24use alloc::{boxed::Box, vec};
25
26use crate::mlaf::{mlaf, neg_mlaf};
27use crate::transfer::{linear_to_srgb_f64, srgb_to_linear_f64};
28
29pub struct LinearizationTable<const N: usize> {
31 table: Box<[f32; N]>,
32}
33
34impl<const N: usize> LinearizationTable<N> {
35 pub fn new() -> Self {
39 let mut table = vec![0.0f32; N].into_boxed_slice();
40 let max_value = (N - 1) as f64;
41
42 for (i, entry) in table.iter_mut().enumerate() {
43 let srgb = i as f64 / max_value;
44 *entry = srgb_to_linear_f64(srgb) as f32;
45 }
46
47 let table: Box<[f32; N]> = table.try_into().expect("size mismatch");
49
50 Self { table }
51 }
52
53 #[inline]
55 pub fn lookup(&self, index: usize) -> f32 {
56 self.table[index.min(N - 1)]
57 }
58
59 #[inline]
61 pub fn as_slice(&self) -> &[f32] {
62 &self.table[..]
63 }
64}
65
66impl<const N: usize> Default for LinearizationTable<N> {
67 fn default() -> Self {
68 Self::new()
69 }
70}
71
72pub struct EncodingTable<const N: usize> {
74 table: Box<[f32; N]>,
75}
76
77impl<const N: usize> EncodingTable<N> {
78 pub fn new() -> Self {
82 let mut table = vec![0.0f32; N].into_boxed_slice();
83 let max_value = (N - 1) as f64;
84
85 for (i, entry) in table.iter_mut().enumerate() {
86 let linear = i as f64 / max_value;
87 *entry = linear_to_srgb_f64(linear) as f32;
88 }
89
90 let table: Box<[f32; N]> = table.try_into().expect("size mismatch");
92
93 Self { table }
94 }
95
96 #[inline]
98 pub fn lookup(&self, index: usize) -> f32 {
99 self.table[index.min(N - 1)]
100 }
101
102 #[inline]
104 pub fn as_slice(&self) -> &[f32] {
105 &self.table[..]
106 }
107}
108
109impl<const N: usize> Default for EncodingTable<N> {
110 fn default() -> Self {
111 Self::new()
112 }
113}
114
115#[inline]
120pub fn lut_interp_linear_float(x: f32, table: &[f32]) -> f32 {
121 let x = x.clamp(0.0, 1.0);
122 let value = x * (table.len() - 1) as f32;
123
124 let upper = value.ceil() as usize;
125 let lower = value.floor() as usize;
126
127 let tu = table[upper.min(table.len() - 1)];
129 let tl = table[lower];
130
131 let diff = upper as f32 - value;
132
133 mlaf(neg_mlaf(tu, tu, diff), tl, diff)
137}
138
139#[inline]
143pub fn lut_interp_linear_u16(input_value: u16, table: &[u16]) -> u16 {
144 let table_len = table.len() as u32;
145 let mut value: u32 = input_value as u32 * (table_len - 1);
146
147 let upper = value.div_ceil(65535) as usize;
148 let lower = (value / 65535) as usize;
149 let interp: u32 = value % 65535;
150
151 let upper = upper.min(table.len() - 1);
153 let lower = lower.min(table.len() - 1);
154
155 value = (table[upper] as u32 * interp + table[lower] as u32 * (65535 - interp)) / 65535;
156 value as u16
157}
158
159pub type LinearTable8 = LinearizationTable<256>;
161
162pub type LinearTable10 = LinearizationTable<1024>;
164
165pub type LinearTable12 = LinearizationTable<4096>;
167
168pub type LinearTable16 = LinearizationTable<65536>;
170
171pub type EncodeTable8 = EncodingTable<256>;
173
174pub type EncodeTable12 = EncodingTable<4096>;
176
177pub type EncodeTable16 = EncodingTable<65536>;
179
180pub struct SrgbConverter;
203
204impl SrgbConverter {
205 #[inline]
209 pub const fn new() -> Self {
210 Self
211 }
212
213 #[inline]
215 pub fn srgb_u8_to_linear(&self, value: u8) -> f32 {
216 crate::const_luts::LINEAR_TABLE_8[value as usize]
217 }
218
219 #[inline]
221 pub fn linear_to_srgb(&self, linear: f32) -> f32 {
222 lut_interp_linear_float(linear, &crate::const_luts::ENCODE_TABLE_12)
223 }
224
225 #[inline]
227 pub fn linear_to_srgb_u8(&self, linear: f32) -> u8 {
228 (self.linear_to_srgb(linear) * 255.0 + 0.5) as u8
229 }
230
231 #[inline]
233 pub fn batch_srgb_to_linear(&self, input: &[u8], output: &mut [f32]) {
234 assert_eq!(input.len(), output.len());
235 for (i, o) in input.iter().zip(output.iter_mut()) {
236 *o = self.srgb_u8_to_linear(*i);
237 }
238 }
239
240 #[inline]
242 pub fn batch_linear_to_srgb(&self, input: &[f32], output: &mut [u8]) {
243 assert_eq!(input.len(), output.len());
244 for (i, o) in input.iter().zip(output.iter_mut()) {
245 *o = self.linear_to_srgb_u8(*i);
246 }
247 }
248}
249
250impl Default for SrgbConverter {
251 fn default() -> Self {
252 Self::new()
253 }
254}
255
256#[cfg(test)]
257mod tests {
258 use super::*;
259
260 #[cfg(not(feature = "std"))]
261 use alloc::{vec, vec::Vec};
262
263 #[test]
264 fn test_linearization_table_8bit() {
265 let table = LinearTable8::new();
266
267 assert_eq!(table.lookup(0), 0.0);
269 assert!((table.lookup(255) - 1.0).abs() < 1e-6);
270
271 let mid = table.lookup(128);
273 assert!(mid > 0.0 && mid < 1.0);
274 }
275
276 #[test]
277 fn test_encoding_table() {
278 let table = EncodeTable12::new();
279
280 assert_eq!(table.lookup(0), 0.0);
281 assert!((table.lookup(4095) - 1.0).abs() < 1e-5);
282 }
283
284 #[test]
285 fn test_lut_interpolation() {
286 let table = EncodeTable12::new();
287
288 let result = lut_interp_linear_float(0.0, table.as_slice());
290 assert!((result - 0.0).abs() < 1e-6);
291
292 let result = lut_interp_linear_float(1.0, table.as_slice());
293 assert!((result - 1.0).abs() < 1e-5);
294 }
295
296 #[test]
297 fn test_converter_roundtrip() {
298 let conv = SrgbConverter::new();
299
300 for i in 0..=255u8 {
301 let linear = conv.srgb_u8_to_linear(i);
302 let back = conv.linear_to_srgb_u8(linear);
303 assert!(
304 (i as i32 - back as i32).abs() <= 1,
305 "Roundtrip failed for {}: {} -> {} -> {}",
306 i,
307 i,
308 linear,
309 back
310 );
311 }
312 }
313
314 #[test]
315 fn test_lut_vs_direct() {
316 use crate::transfer::srgb_to_linear;
317
318 let table = LinearTable8::new();
319
320 for i in 0..=255u8 {
322 let lut_result = table.lookup(i as usize);
323 let direct_result = srgb_to_linear(i as f32 / 255.0);
324 assert!(
325 (lut_result - direct_result).abs() < 1e-5,
326 "Mismatch at {}: LUT={}, direct={}",
327 i,
328 lut_result,
329 direct_result
330 );
331 }
332 }
333
334 #[test]
335 fn test_u16_interpolation() {
336 let table: Vec<u16> = (0..=255).map(|i| (i * 257) as u16).collect();
338
339 assert_eq!(lut_interp_linear_u16(0, &table), 0);
341
342 assert_eq!(lut_interp_linear_u16(65535, &table), 65535);
344 }
345
346 #[test]
347 fn test_batch_conversion() {
348 let conv = SrgbConverter::new();
349
350 let input: Vec<u8> = (0..=255).collect();
351 let mut linear = vec![0.0f32; 256];
352 let mut back = vec![0u8; 256];
353
354 conv.batch_srgb_to_linear(&input, &mut linear);
355 conv.batch_linear_to_srgb(&linear, &mut back);
356
357 for i in 0..256 {
358 assert!(
359 (input[i] as i32 - back[i] as i32).abs() <= 1,
360 "Batch roundtrip failed at {}",
361 i
362 );
363 }
364 }
365}