1use ferray_core::error::{FerrayError, FerrayResult};
4use ferray_core::{Array, Dimension, Element, Ix1, IxDyn};
5
6use crate::reductions::{
7 borrow_data, make_result, output_shape, reduce_axis_general_u64, validate_axis,
8};
9
10#[derive(Debug)]
16pub struct UniqueResult<T: Element> {
17 pub values: Array<T, Ix1>,
19 pub indices: Option<Array<u64, Ix1>>,
22 pub inverse: Option<Array<u64, Ix1>>,
26 pub counts: Option<Array<u64, Ix1>>,
28}
29
30pub fn unique<T, D>(
41 a: &Array<T, D>,
42 return_index: bool,
43 return_inverse: bool,
44 return_counts: bool,
45) -> FerrayResult<UniqueResult<T>>
46where
47 T: Element + PartialOrd + Copy,
48 D: Dimension,
49{
50 let data: Vec<T> = a.iter().copied().collect();
51 let n_data = data.len();
52
53 let mut pairs: Vec<(T, usize)> = data
55 .iter()
56 .copied()
57 .enumerate()
58 .map(|(i, v)| (v, i))
59 .collect();
60 pairs.sort_by(|a, b| a.0.partial_cmp(&b.0).unwrap_or(std::cmp::Ordering::Equal));
61
62 let mut unique_vals = Vec::new();
69 let mut unique_indices: Vec<u64> = Vec::new();
70 let mut unique_counts: Vec<u64> = Vec::new();
71 let mut inverse_vec: Vec<u64> = if return_inverse {
72 vec![0u64; n_data]
73 } else {
74 Vec::new()
75 };
76
77 if !pairs.is_empty() {
78 unique_vals.push(pairs[0].0);
79 unique_indices.push(pairs[0].1 as u64);
80 if return_inverse {
81 inverse_vec[pairs[0].1] = 0;
82 }
83 let mut count = 1u64;
84 let mut unique_pos: u64 = 0;
85
86 for i in 1..pairs.len() {
87 if pairs[i].0.partial_cmp(&pairs[i - 1].0) != Some(std::cmp::Ordering::Equal) {
88 if return_counts {
89 unique_counts.push(count);
90 }
91 unique_vals.push(pairs[i].0);
92 unique_indices.push(pairs[i].1 as u64);
93 count = 1;
94 unique_pos += 1;
95 } else {
96 count += 1;
97 let last = unique_indices.len() - 1;
99 let new_idx = pairs[i].1 as u64;
100 if new_idx < unique_indices[last] {
101 unique_indices[last] = new_idx;
102 }
103 }
104 if return_inverse {
105 inverse_vec[pairs[i].1] = unique_pos;
106 }
107 }
108 if return_counts {
109 unique_counts.push(count);
110 }
111 }
112
113 let n = unique_vals.len();
114 let values = Array::from_vec(Ix1::new([n]), unique_vals)?;
115 let indices = if return_index {
116 Some(Array::from_vec(Ix1::new([n]), unique_indices)?)
117 } else {
118 None
119 };
120 let inverse = if return_inverse {
121 Some(Array::from_vec(Ix1::new([n_data]), inverse_vec)?)
122 } else {
123 None
124 };
125 let counts = if return_counts {
126 Some(Array::from_vec(Ix1::new([n]), unique_counts)?)
127 } else {
128 None
129 };
130
131 Ok(UniqueResult {
132 values,
133 indices,
134 inverse,
135 counts,
136 })
137}
138
139pub fn nonzero<T, D>(a: &Array<T, D>) -> FerrayResult<Vec<Array<u64, Ix1>>>
150where
151 T: Element + PartialEq + Copy,
152 D: Dimension,
153{
154 let shape = a.shape();
155 let ndim = shape.len();
156 let zero = <T as Element>::zero();
157
158 let mut indices_per_dim: Vec<Vec<u64>> = vec![Vec::new(); ndim];
160
161 let mut strides = vec![1usize; ndim];
163 for i in (0..ndim.saturating_sub(1)).rev() {
164 strides[i] = strides[i + 1] * shape[i + 1];
165 }
166
167 for (flat_idx, &val) in a.iter().enumerate() {
168 if val != zero {
169 let mut rem = flat_idx;
170 for d in 0..ndim {
171 indices_per_dim[d].push((rem / strides[d]) as u64);
172 rem %= strides[d];
173 }
174 }
175 }
176
177 let mut result = Vec::with_capacity(ndim);
178 for idx_vec in indices_per_dim {
179 let n = idx_vec.len();
180 result.push(Array::from_vec(Ix1::new([n]), idx_vec)?);
181 }
182
183 Ok(result)
184}
185
186pub fn where_<T, D>(
199 condition: &Array<bool, D>,
200 x: &Array<T, D>,
201 y: &Array<T, D>,
202) -> FerrayResult<Array<T, D>>
203where
204 T: Element + Copy,
205 D: Dimension,
206{
207 if condition.shape() != x.shape() || condition.shape() != y.shape() {
208 return Err(FerrayError::shape_mismatch(format!(
209 "condition, x, y shapes must match: {:?}, {:?}, {:?}",
210 condition.shape(),
211 x.shape(),
212 y.shape()
213 )));
214 }
215
216 let result: Vec<T> = condition
217 .iter()
218 .zip(x.iter())
219 .zip(y.iter())
220 .map(|((&c, &xv), &yv)| if c { xv } else { yv })
221 .collect();
222
223 Array::from_vec(condition.dim().clone(), result)
224}
225
226pub fn where_condition<D: Dimension>(
233 condition: &Array<bool, D>,
234) -> FerrayResult<Vec<Array<u64, Ix1>>> {
235 let shape = condition.shape();
236 let ndim = shape.len();
237 let mut indices_per_dim: Vec<Vec<u64>> = vec![Vec::new(); ndim];
238
239 let mut strides = vec![1usize; ndim];
240 for i in (0..ndim.saturating_sub(1)).rev() {
241 strides[i] = strides[i + 1] * shape[i + 1];
242 }
243
244 for (flat_idx, &val) in condition.iter().enumerate() {
245 if val {
246 let mut rem = flat_idx;
247 for d in 0..ndim {
248 indices_per_dim[d].push((rem / strides[d]) as u64);
249 rem %= strides[d];
250 }
251 }
252 }
253
254 indices_per_dim
255 .into_iter()
256 .map(|v| {
257 let n = v.len();
258 Array::from_vec(Ix1::new([n]), v)
259 })
260 .collect()
261}
262
263pub fn count_nonzero<T, D>(a: &Array<T, D>, axis: Option<usize>) -> FerrayResult<Array<u64, IxDyn>>
271where
272 T: Element + PartialEq + Copy,
273 D: Dimension,
274{
275 let zero = <T as Element>::zero();
276 let data = borrow_data(a);
277 match axis {
278 None => {
279 let count = data.iter().filter(|&&x| x != zero).count() as u64;
280 make_result(&[], vec![count])
281 }
282 Some(ax) => {
283 validate_axis(ax, a.ndim())?;
284 let shape = a.shape();
285 let out_s = output_shape(shape, ax);
286 let result = reduce_axis_general_u64(&data, shape, ax, |lane| {
287 lane.iter().filter(|&&x| x != zero).count() as u64
288 });
289 make_result(&out_s, result)
290 }
291 }
292}
293
294#[cfg(test)]
295mod tests {
296 use super::*;
297 use ferray_core::{Ix1, Ix2};
298
299 #[test]
300 fn test_unique_basic() {
301 let a = Array::<i32, Ix1>::from_vec(Ix1::new([6]), vec![3, 1, 2, 1, 3, 2]).unwrap();
302 let u = unique(&a, false, false, false).unwrap();
303 let data: Vec<i32> = u.values.iter().copied().collect();
304 assert_eq!(data, vec![1, 2, 3]);
305 }
306
307 #[test]
308 fn test_unique_with_counts() {
309 let a = Array::<i32, Ix1>::from_vec(Ix1::new([6]), vec![3, 1, 2, 1, 3, 2]).unwrap();
310 let u = unique(&a, false, false, true).unwrap();
311 let vals: Vec<i32> = u.values.iter().copied().collect();
312 let cnts: Vec<u64> = u.counts.unwrap().iter().copied().collect();
313 assert_eq!(vals, vec![1, 2, 3]);
314 assert_eq!(cnts, vec![2, 2, 2]);
315 }
316
317 #[test]
318 fn test_unique_with_index() {
319 let a = Array::<i32, Ix1>::from_vec(Ix1::new([5]), vec![5, 3, 3, 1, 5]).unwrap();
320 let u = unique(&a, true, false, false).unwrap();
321 let vals: Vec<i32> = u.values.iter().copied().collect();
322 let idxs: Vec<u64> = u.indices.unwrap().iter().copied().collect();
323 assert_eq!(vals, vec![1, 3, 5]);
324 assert_eq!(idxs, vec![3, 1, 0]);
325 }
326
327 #[test]
330 fn test_unique_inverse_reconstructs_input() {
331 let input = vec![3, 1, 2, 1, 3, 2];
333 let a = Array::<i32, Ix1>::from_vec(Ix1::new([6]), input.clone()).unwrap();
334 let u = unique(&a, false, true, false).unwrap();
335 let vals: Vec<i32> = u.values.iter().copied().collect();
336 let inv: Vec<u64> = u.inverse.unwrap().iter().copied().collect();
337 assert_eq!(vals, vec![1, 2, 3]);
339 let reconstructed: Vec<i32> = inv.iter().map(|&i| vals[i as usize]).collect();
341 assert_eq!(reconstructed, input);
342 }
343
344 #[test]
345 fn test_unique_inverse_all_together() {
346 let a = Array::<i32, Ix1>::from_vec(Ix1::new([7]), vec![2, 1, 2, 3, 1, 2, 3]).unwrap();
349 let u = unique(&a, true, true, true).unwrap();
350 let vals: Vec<i32> = u.values.iter().copied().collect();
351 let idxs: Vec<u64> = u.indices.unwrap().iter().copied().collect();
352 let inv: Vec<u64> = u.inverse.unwrap().iter().copied().collect();
353 let cnts: Vec<u64> = u.counts.unwrap().iter().copied().collect();
354 assert_eq!(vals, vec![1, 2, 3]);
355 assert_eq!(idxs, vec![1, 0, 3]); assert_eq!(cnts, vec![2, 3, 2]);
357 let reconstructed: Vec<i32> = inv.iter().map(|&i| vals[i as usize]).collect();
359 assert_eq!(reconstructed, vec![2, 1, 2, 3, 1, 2, 3]);
360 }
361
362 #[test]
363 fn test_unique_inverse_with_2d_flattens_first() {
364 let a = Array::<i32, Ix2>::from_vec(Ix2::new([2, 3]), vec![1, 2, 1, 3, 2, 1]).unwrap();
367 let u = unique(&a, false, true, false).unwrap();
368 let vals: Vec<i32> = u.values.iter().copied().collect();
369 let inv: Vec<u64> = u.inverse.unwrap().iter().copied().collect();
370 assert_eq!(vals, vec![1, 2, 3]);
371 assert_eq!(inv.len(), 6);
372 let flat: Vec<i32> = vec![1, 2, 1, 3, 2, 1];
373 let reconstructed: Vec<i32> = inv.iter().map(|&i| vals[i as usize]).collect();
374 assert_eq!(reconstructed, flat);
375 }
376
377 #[test]
378 fn test_unique_inverse_empty_input() {
379 let a = Array::<i32, Ix1>::from_vec(Ix1::new([0]), vec![]).unwrap();
380 let u = unique(&a, false, true, false).unwrap();
381 assert_eq!(u.values.shape(), &[0]);
382 let inv = u.inverse.unwrap();
383 assert_eq!(inv.shape(), &[0]);
384 }
385
386 #[test]
387 fn test_unique_inverse_single_value() {
388 let a = Array::<i32, Ix1>::from_vec(Ix1::new([4]), vec![7, 7, 7, 7]).unwrap();
390 let u = unique(&a, false, true, false).unwrap();
391 let inv: Vec<u64> = u.inverse.unwrap().iter().copied().collect();
392 assert_eq!(inv, vec![0, 0, 0, 0]);
393 }
394
395 #[test]
396 fn test_unique_without_inverse_leaves_field_none() {
397 let a = Array::<i32, Ix1>::from_vec(Ix1::new([3]), vec![1, 2, 1]).unwrap();
398 let u = unique(&a, false, false, false).unwrap();
399 assert!(u.inverse.is_none());
400 }
401
402 #[test]
403 fn test_nonzero_1d() {
404 let a = Array::<i32, Ix1>::from_vec(Ix1::new([5]), vec![0, 1, 0, 3, 0]).unwrap();
405 let nz = nonzero(&a).unwrap();
406 assert_eq!(nz.len(), 1);
407 let data: Vec<u64> = nz[0].iter().copied().collect();
408 assert_eq!(data, vec![1, 3]);
409 }
410
411 #[test]
412 fn test_nonzero_2d() {
413 let a = Array::<i32, Ix2>::from_vec(Ix2::new([2, 3]), vec![0, 1, 0, 3, 0, 5]).unwrap();
414 let nz = nonzero(&a).unwrap();
415 assert_eq!(nz.len(), 2);
416 let rows: Vec<u64> = nz[0].iter().copied().collect();
417 let cols: Vec<u64> = nz[1].iter().copied().collect();
418 assert_eq!(rows, vec![0, 1, 1]);
419 assert_eq!(cols, vec![1, 0, 2]);
420 }
421
422 #[test]
423 fn test_where_basic() {
424 let cond =
425 Array::<bool, Ix1>::from_vec(Ix1::new([4]), vec![true, false, true, false]).unwrap();
426 let x = Array::<f64, Ix1>::from_vec(Ix1::new([4]), vec![1.0, 2.0, 3.0, 4.0]).unwrap();
427 let y = Array::<f64, Ix1>::from_vec(Ix1::new([4]), vec![10.0, 20.0, 30.0, 40.0]).unwrap();
428 let r = where_(&cond, &x, &y).unwrap();
429 let data: Vec<f64> = r.iter().copied().collect();
430 assert_eq!(data, vec![1.0, 20.0, 3.0, 40.0]);
431 }
432
433 #[test]
434 fn test_where_shape_mismatch() {
435 let cond = Array::<bool, Ix1>::from_vec(Ix1::new([3]), vec![true, false, true]).unwrap();
436 let x = Array::<f64, Ix1>::from_vec(Ix1::new([4]), vec![1.0, 2.0, 3.0, 4.0]).unwrap();
437 let y = Array::<f64, Ix1>::from_vec(Ix1::new([4]), vec![10.0, 20.0, 30.0, 40.0]).unwrap();
438 assert!(where_(&cond, &x, &y).is_err());
439 }
440
441 #[test]
442 fn test_count_nonzero_total() {
443 let a = Array::<i32, Ix1>::from_vec(Ix1::new([5]), vec![0, 1, 0, 3, 0]).unwrap();
444 let c = count_nonzero(&a, None).unwrap();
445 assert_eq!(c.iter().next(), Some(&2u64));
446 }
447
448 #[test]
449 fn test_count_nonzero_axis() {
450 let a = Array::<i32, Ix2>::from_vec(Ix2::new([2, 3]), vec![0, 1, 0, 3, 0, 5]).unwrap();
451 let c = count_nonzero(&a, Some(0)).unwrap();
452 let data: Vec<u64> = c.iter().copied().collect();
453 assert_eq!(data, vec![1, 1, 1]);
454 }
455
456 #[test]
457 fn test_count_nonzero_axis1() {
458 let a = Array::<i32, Ix2>::from_vec(Ix2::new([2, 3]), vec![0, 1, 0, 3, 0, 5]).unwrap();
459 let c = count_nonzero(&a, Some(1)).unwrap();
460 let data: Vec<u64> = c.iter().copied().collect();
461 assert_eq!(data, vec![1, 2]);
462 }
463}