rstsr_common/layout/
indexer.rs

1use crate::prelude_dev::*;
2
3#[non_exhaustive]
4#[derive(Debug, Clone, PartialEq, Eq)]
5pub enum Indexer {
6    /// Slice the tensor by a range, denoted by slice instead of
7    /// std::ops::Range.
8    Slice(SliceI),
9    /// Marginalize one dimension out by index.
10    Select(isize),
11    /// Insert dimension at index, something like unsqueeze. Currently not
12    /// applied.
13    Insert,
14    /// Expand dimensions.
15    Ellipsis,
16}
17
18pub use Indexer::Ellipsis;
19pub use Indexer::Insert as NewAxis;
20
21/* #region into Indexer */
22
23impl<R> From<R> for Indexer
24where
25    R: Into<SliceI>,
26{
27    fn from(slice: R) -> Self {
28        Self::Slice(slice.into())
29    }
30}
31
32impl From<Option<usize>> for Indexer {
33    fn from(opt: Option<usize>) -> Self {
34        match opt {
35            Some(_) => panic!("Option<T> should not be used in Indexer."),
36            None => Self::Insert,
37        }
38    }
39}
40
41macro_rules! impl_from_int_into_indexer {
42    ($($t:ty),*) => {
43        $(
44            impl From<$t> for Indexer {
45                fn from(index: $t) -> Self {
46                    Self::Select(index as isize)
47                }
48            }
49        )*
50    };
51}
52
53impl_from_int_into_indexer!(usize, isize, u32, i32, u64, i64);
54
55/* #endregion */
56
57/* #region into AxesIndex<Indexer> */
58
59macro_rules! impl_into_axes_index {
60    ($($t:ty),*) => {
61        $(
62            impl TryFrom<$t> for AxesIndex<Indexer> {
63                type Error = Error;
64
65                fn try_from(index: $t) -> Result<Self> {
66                    Ok(AxesIndex::Val(index.try_into()?))
67                }
68            }
69
70            impl<const N: usize> TryFrom<[$t; N]> for AxesIndex<Indexer> {
71                type Error = Error;
72
73                fn try_from(index: [$t; N]) -> Result<Self> {
74                    let index = index.iter().map(|v| v.clone().into()).collect::<Vec<_>>();
75                    Ok(AxesIndex::Vec(index))
76                }
77            }
78
79            impl TryFrom<Vec<$t>> for AxesIndex<Indexer> {
80                type Error = Error;
81
82                fn try_from(index: Vec<$t>) -> Result<Self> {
83                    let index = index.iter().map(|v| v.clone().into()).collect::<Vec<_>>();
84                    Ok(AxesIndex::Vec(index))
85                }
86            }
87        )*
88    };
89}
90
91impl_into_axes_index!(usize, isize, u32, i32, u64, i64);
92impl_into_axes_index!(Option<usize>);
93impl_into_axes_index!(
94    Slice<isize>,
95    core::ops::Range<isize>,
96    core::ops::RangeFrom<isize>,
97    core::ops::RangeTo<isize>,
98    core::ops::Range<usize>,
99    core::ops::RangeFrom<usize>,
100    core::ops::RangeTo<usize>,
101    core::ops::Range<i32>,
102    core::ops::RangeFrom<i32>,
103    core::ops::RangeTo<i32>,
104    core::ops::RangeFull
105);
106
107impl_from_tuple_to_axes_index!(Indexer);
108
109/* #endregion */
110
111pub trait IndexerPreserveAPI: Sized {
112    /// Narrowing tensor by slicing at a specific axis.
113    fn dim_narrow(&self, axis: isize, slice: SliceI) -> Result<Self>;
114}
115
116impl<D> IndexerPreserveAPI for Layout<D>
117where
118    D: DimDevAPI,
119{
120    fn dim_narrow(&self, axis: isize, slice: SliceI) -> Result<Self> {
121        // dimension check
122        let axis = if axis < 0 { self.ndim() as isize + axis } else { axis };
123        rstsr_pattern!(axis, 0..self.ndim() as isize, ValueOutOfRange)?;
124        let axis = axis as usize;
125
126        // get essential information
127        let mut shape = self.shape().clone();
128        let mut stride = self.stride().clone();
129
130        // fast return if slice is empty
131        if slice == Slice::new(None, None, None) {
132            return Ok(self.clone());
133        }
134
135        // previous shape length
136        let len_prev = shape[axis] as isize;
137
138        // handle cases of step > 0 and step < 0
139        let step = slice.step().unwrap_or(1);
140        rstsr_assert!(step != 0, InvalidValue)?;
141
142        // quick return if previous shape is zero
143        if len_prev == 0 {
144            return Ok(self.clone());
145        }
146
147        if step > 0 {
148            // default start = 0 and stop = len_prev
149            let mut start = slice.start().unwrap_or(0);
150            let mut stop = slice.stop().unwrap_or(len_prev);
151
152            // handle negative slice
153            if start < 0 {
154                start = (len_prev + start).max(0);
155            }
156            if stop < 0 {
157                stop = (len_prev + stop).max(0);
158            }
159
160            if start > len_prev || start > stop {
161                // zero size slice caused by inproper start and stop
162                start = 0;
163                stop = 0;
164            } else if stop > len_prev {
165                // stop is out of bound, set it to len_prev
166                stop = len_prev;
167            }
168
169            let offset = (self.offset() as isize + stride[axis] * start) as usize;
170            shape[axis] = ((stop - start + step - 1) / step).max(0) as usize;
171            stride[axis] *= step;
172            return Self::new(shape, stride, offset);
173        } else {
174            // step < 0
175            // default start = len_prev - 1 and stop = -1
176            let mut start = slice.start().unwrap_or(len_prev - 1);
177            let mut stop = slice.stop().unwrap_or(-1);
178
179            // handle negative slice
180            if start < 0 {
181                start = (len_prev + start).max(0);
182            }
183            if stop < -1 {
184                stop = (len_prev + stop).max(-1);
185            }
186
187            if stop > len_prev - 1 || stop > start {
188                // zero size slice caused by inproper start and stop
189                start = 0;
190                stop = 0;
191            } else if start > len_prev - 1 {
192                // start is out of bound, set it to len_prev
193                start = len_prev - 1;
194            }
195
196            let offset = (self.offset() as isize + stride[axis] * start) as usize;
197            shape[axis] = ((stop - start + step + 1) / step).max(0) as usize;
198            stride[axis] *= step;
199            return Self::new(shape, stride, offset);
200        }
201    }
202}
203
204pub trait IndexerSmallerOneAPI {
205    type DOut: DimDevAPI;
206
207    /// Select dimension at index. Number of dimension will decrease by 1.
208    fn dim_select(&self, axis: isize, index: isize) -> Result<Layout<Self::DOut>>;
209
210    /// Eliminate dimension at index. Number of dimension will decrease by 1.
211    fn dim_eliminate(&self, axis: isize) -> Result<Layout<Self::DOut>>;
212}
213
214impl<D> IndexerSmallerOneAPI for Layout<D>
215where
216    D: DimDevAPI + DimSmallerOneAPI,
217    D::SmallerOne: DimDevAPI,
218{
219    type DOut = <D as DimSmallerOneAPI>::SmallerOne;
220
221    fn dim_select(&self, axis: isize, index: isize) -> Result<Layout<Self::DOut>> {
222        // dimension check
223        let axis = if axis < 0 { self.ndim() as isize + axis } else { axis };
224        rstsr_pattern!(axis, 0..self.ndim() as isize, ValueOutOfRange)?;
225        let axis = axis as usize;
226
227        // get essential information
228        let shape = self.shape();
229        let stride = self.stride();
230        let mut offset = self.offset() as isize;
231        let mut shape_new = vec![];
232        let mut stride_new = vec![];
233
234        // change everything
235        for (i, (&d, &s)) in shape.as_ref().iter().zip(stride.as_ref().iter()).enumerate() {
236            if i == axis {
237                // dimension to be selected
238                let idx = if index < 0 { d as isize + index } else { index };
239                rstsr_pattern!(idx, 0..d as isize, ValueOutOfRange)?;
240                offset += s * idx;
241            } else {
242                // other dimensions
243                shape_new.push(d);
244                stride_new.push(s);
245            }
246        }
247
248        let offset = offset as usize;
249        let layout = Layout::<IxD>::new(shape_new, stride_new, offset)?;
250        return layout.into_dim();
251    }
252
253    fn dim_eliminate(&self, axis: isize) -> Result<Layout<Self::DOut>> {
254        // dimension check
255        let axis = if axis < 0 { self.ndim() as isize + axis } else { axis };
256        rstsr_pattern!(axis, 0..self.ndim() as isize, ValueOutOfRange)?;
257        let axis = axis as usize;
258
259        // get essential information
260        let mut shape = self.shape().as_ref().to_vec();
261        let mut stride = self.stride().as_ref().to_vec();
262        let offset = self.offset();
263
264        if shape[axis] != 1 {
265            rstsr_raise!(InvalidValue, "Dimension to be eliminated is not 1.")?;
266        }
267
268        shape.remove(axis);
269        stride.remove(axis);
270
271        let layout = Layout::<IxD>::new(shape, stride, offset)?;
272        return layout.into_dim();
273    }
274}
275
276pub trait IndexerLargerOneAPI {
277    type DOut: DimDevAPI;
278
279    /// Insert dimension after, with shape 1. Number of dimension will increase
280    /// by 1.
281    fn dim_insert(&self, axis: isize) -> Result<Layout<Self::DOut>>;
282}
283
284impl<D> IndexerLargerOneAPI for Layout<D>
285where
286    D: DimDevAPI + DimLargerOneAPI,
287    D::LargerOne: DimDevAPI,
288{
289    type DOut = <D as DimLargerOneAPI>::LargerOne;
290
291    fn dim_insert(&self, axis: isize) -> Result<Layout<Self::DOut>> {
292        // dimension check
293        let axis = if axis < 0 { self.ndim() as isize + axis + 1 } else { axis };
294        rstsr_pattern!(axis, 0..(self.ndim() + 1) as isize, ValueOutOfRange)?;
295        let axis = axis as usize;
296
297        // get essential information
298        let is_f_prefer = self.f_prefer();
299        let mut shape = self.shape().as_ref().to_vec();
300        let mut stride = self.stride().as_ref().to_vec();
301        let offset = self.offset();
302
303        if is_f_prefer {
304            if axis == 0 {
305                shape.insert(0, 1);
306                stride.insert(0, 1);
307            } else {
308                shape.insert(axis, 1);
309                stride.insert(axis, stride[axis - 1]);
310            }
311        } else if axis == self.ndim() {
312            shape.push(1);
313            stride.push(1);
314        } else {
315            shape.insert(axis, 1);
316            stride.insert(axis, stride[axis]);
317        }
318
319        let layout = Layout::new(shape, stride, offset)?;
320        return layout.into_dim();
321    }
322}
323
324pub trait IndexerDynamicAPI: IndexerPreserveAPI {
325    /// Index tensor by a list of indexers.
326    fn dim_slice(&self, indexers: &[Indexer]) -> Result<Layout<IxD>>;
327
328    /// Split current layout into two layouts at axis, with offset unchanged.
329    fn dim_split_at(&self, axis: isize) -> Result<(Layout<IxD>, Layout<IxD>)>;
330
331    fn dim_split_axes(&self, axes: &[isize]) -> Result<(Layout<IxD>, Layout<IxD>)>;
332}
333
334impl<D> IndexerDynamicAPI for Layout<D>
335where
336    D: DimDevAPI,
337{
338    fn dim_slice(&self, indexers: &[Indexer]) -> Result<Layout<IxD>> {
339        // transform any layout to dynamic layout
340        let shape = self.shape().as_ref().to_vec();
341        let stride = self.stride().as_ref().to_vec();
342        let mut layout = Layout::new(shape, stride, self.offset)?;
343
344        // clone indexers to vec to make it changeable
345        let mut indexers = indexers.to_vec();
346
347        // counter for indexer
348        let mut counter_slice = 0;
349        let mut counter_select = 0;
350        let mut idx_ellipsis = None;
351        for (n, indexer) in indexers.iter().enumerate() {
352            match indexer {
353                Indexer::Slice(_) => counter_slice += 1,
354                Indexer::Select(_) => counter_select += 1,
355                Indexer::Ellipsis => match idx_ellipsis {
356                    Some(_) => rstsr_raise!(InvalidValue, "Only one ellipsis indexer allowed.")?,
357                    None => idx_ellipsis = Some(n),
358                },
359                _ => {},
360            }
361        }
362
363        // check if slice-type and select-type indexer exceed the number of dimensions
364        rstsr_pattern!(counter_slice + counter_select, 0..=self.ndim(), ValueOutOfRange)?;
365
366        // insert Ellipsis by slice(:) anyway, default append at last
367        let n_ellipsis = self.ndim() - counter_slice - counter_select;
368        if n_ellipsis == 0 {
369            if let Some(idx) = idx_ellipsis {
370                indexers.remove(idx);
371            }
372        } else if let Some(idx_ellipsis) = idx_ellipsis {
373            indexers[idx_ellipsis] = SliceI::new(None, None, None).into();
374            if n_ellipsis > 1 {
375                for _ in 1..n_ellipsis {
376                    indexers.insert(idx_ellipsis, SliceI::new(None, None, None).into());
377                }
378            }
379        } else {
380            for _ in 0..n_ellipsis {
381                indexers.push(SliceI::new(None, None, None).into());
382            }
383        }
384
385        // handle indexers from last
386        // it is possible to be zero-dim, minus after -= 1
387        let mut cur_dim = self.ndim() as isize;
388        for indexer in indexers.iter().rev() {
389            match indexer {
390                Indexer::Slice(slice) => {
391                    cur_dim -= 1;
392                    layout = layout.dim_narrow(cur_dim, *slice)?;
393                },
394                Indexer::Select(index) => {
395                    cur_dim -= 1;
396                    layout = layout.dim_select(cur_dim, *index)?;
397                },
398                Indexer::Insert => {
399                    layout = layout.dim_insert(cur_dim)?;
400                },
401                _ => rstsr_raise!(InvalidValue, "Invalid indexer found : {:?}", indexer)?,
402            }
403        }
404
405        // this program should be designed that cur_dim is zero at the end
406        rstsr_assert!(cur_dim == 0, Miscellaneous, "Internal program error in indexer.")?;
407
408        return Ok(layout);
409    }
410
411    fn dim_split_at(&self, axis: isize) -> Result<(Layout<IxD>, Layout<IxD>)> {
412        // dimension check
413        // this functions allows [-n, n], not previous functions [-n, n)
414        let axis = if axis < 0 { self.ndim() as isize + axis } else { axis };
415        rstsr_pattern!(axis, 0..=self.ndim() as isize, ValueOutOfRange)?;
416        let axis = axis as usize;
417
418        // split layouts
419        let shape = self.shape().as_ref().to_vec();
420        let stride = self.stride().as_ref().to_vec();
421        let offset = self.offset();
422
423        let (shape1, shape2) = shape.split_at(axis);
424        let (stride1, stride2) = stride.split_at(axis);
425
426        let layout1 = unsafe { Layout::new_unchecked(shape1.to_vec(), stride1.to_vec(), offset) };
427        let layout2 = unsafe { Layout::new_unchecked(shape2.to_vec(), stride2.to_vec(), offset) };
428        return Ok((layout1, layout2));
429    }
430
431    fn dim_split_axes(&self, axes: &[isize]) -> Result<(Layout<IxD>, Layout<IxD>)> {
432        // returned layouts will be
433        // (layout_axes, layout_rest)
434
435        // axes to usize
436        let mut axes_update: Vec<usize> = vec![];
437        for &axis in axes {
438            let axis = if axis < 0 { self.ndim() as isize + axis } else { axis };
439            rstsr_pattern!(axis, 0..self.ndim() as isize, ValueOutOfRange)?;
440            axes_update.push(axis as usize);
441        }
442
443        // check same values
444        let axes_check = axes_update.clone();
445        axes_update.sort();
446        axes_update.dedup();
447        rstsr_assert_eq!(
448            axes_update.len(),
449            axes_check.len(),
450            InvalidLayout,
451            "Same axis is not allowed for this function."
452        )?;
453
454        // rest of axes
455        // this is not the most efficient way, but low cost when dimension is small
456        let axes_rest = (0..self.ndim()).filter(|&axis| !axes_update.contains(&axis)).collect::<Vec<_>>();
457
458        // split layouts for axes
459        let offset = self.offset();
460        let shape_axes = axes_update.iter().map(|&axis| self.shape()[axis]).collect::<Vec<_>>();
461        let strides_axes = axes_update.iter().map(|&axis| self.stride()[axis]).collect::<Vec<_>>();
462        let layout_axes = Layout::new(shape_axes, strides_axes, offset)?;
463
464        let shape_rest = axes_rest.iter().map(|&axis| self.shape()[axis]).collect::<Vec<_>>();
465        let strides_rest = axes_rest.iter().map(|&axis| self.stride()[axis]).collect::<Vec<_>>();
466        let layout_rest = Layout::new(shape_rest, strides_rest, offset)?;
467
468        return Ok((layout_axes, layout_rest));
469    }
470}
471
472/// Generate slice with into support and optional parameters.
473#[macro_export]
474macro_rules! slice {
475    ($stop:expr) => {{
476        use $crate::layout::slice::Slice;
477        Slice::<isize>::from(Slice::new(None, $stop, None))
478    }};
479    ($start:expr, $stop:expr) => {{
480        use $crate::layout::slice::Slice;
481        Slice::<isize>::from(Slice::new($start, $stop, None))
482    }};
483    ($start:expr, $stop:expr, $step:expr) => {{
484        use $crate::layout::slice::Slice;
485        Slice::<isize>::from(Slice::new($start, $stop, $step))
486    }};
487}
488
489#[macro_export]
490macro_rules! s {
491    // basic rule
492    [$($slc:expr),*] => {
493        [$(($slc).into()),*].as_ref()
494    };
495}
496
497#[cfg(test)]
498mod tests {
499    use super::*;
500
501    #[test]
502    fn test_slice() {
503        let t = 3_usize;
504        let s = slice!(1, 2, t);
505        assert_eq!(s.start(), Some(1));
506        assert_eq!(s.stop(), Some(2));
507        assert_eq!(s.step(), Some(3));
508    }
509
510    #[test]
511    fn test_slice_at_dim() {
512        let l = Layout::new([2, 3, 4], [1, 10, 100], 0).unwrap();
513        let s = slice!(10, 1, -1);
514        let l1 = l.dim_narrow(1, s).unwrap();
515        println!("{l1:?}");
516        let l2 = l.dim_select(1, -2).unwrap();
517        println!("{l2:?}");
518        let l3 = l.dim_insert(1).unwrap();
519        println!("{l3:?}");
520
521        let l = Layout::new([2, 3, 4], [100, 10, 1], 0).unwrap();
522        let l3 = l.dim_insert(1).unwrap();
523        println!("{l3:?}");
524
525        let l4 = l.dim_slice(s![Indexer::Ellipsis, 1..3, None, 2]).unwrap();
526        let l4 = l4.into_dim::<Ix3>().unwrap();
527        println!("{l4:?}");
528        assert_eq!(l4.shape(), &[2, 2, 1]);
529        assert_eq!(l4.offset(), 12);
530
531        let l5 = l.dim_slice(s![None, 1, None, 1..3]).unwrap();
532        let l5 = l5.into_dim::<Ix4>().unwrap();
533        println!("{l5:?}");
534        assert_eq!(l5.shape(), &[1, 1, 2, 4]);
535        assert_eq!(l5.offset(), 110);
536    }
537
538    #[test]
539    fn test_slice_with_stride() {
540        let l = Layout::new([24], [1], 0).unwrap();
541        let b = l.dim_narrow(0, slice!(5, 15, 2)).unwrap();
542        assert_eq!(b, Layout::new([5], [2], 5).unwrap());
543        let b = l.dim_narrow(0, slice!(5, 16, 2)).unwrap();
544        assert_eq!(b, Layout::new([6], [2], 5).unwrap());
545        let b = l.dim_narrow(0, slice!(15, 5, -2)).unwrap();
546        assert_eq!(b, Layout::new([5], [-2], 15).unwrap());
547        let b = l.dim_narrow(0, slice!(15, 4, -2)).unwrap();
548        assert_eq!(b, Layout::new([6], [-2], 15).unwrap());
549    }
550
551    #[test]
552    fn test_expand_dims() {
553        let l = Layout::<Ix3>::new([2, 3, 4], [1, 10, 100], 0).unwrap();
554        let l1 = l.dim_insert(0).unwrap();
555        println!("{l1:?}");
556        let l2 = l.dim_insert(1).unwrap();
557        println!("{l2:?}");
558        let l3 = l.dim_insert(3).unwrap();
559        println!("{l3:?}");
560        let l4 = l.dim_insert(-1).unwrap();
561        println!("{l4:?}");
562        let l5 = l.dim_insert(-4).unwrap();
563        println!("{l5:?}");
564    }
565}