FP8 model support in DNN - #29834
ONNX coverage after this PR: 76.6%
co-authored by: @SavyaSanchi-Sharma
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Merge pull request #29931 from abhishek-gola:onnx_conformance_remaining_fixes
fix ONNX auto_pad, PRelu broadcasting and LSTM peepholes - #29931
closes: https://github.com/opencv/opencv/issues/21078
Upated ONNX coverage: 77.8%
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SIMD support for FP8 - #29832
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Added Bitcast layer & extended MatMul and DFT layers support - #29594
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Support ONNX Cast/CastLike for FP8/FP4/INT4/UINT4/E8M0 dtypes - #29360
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Added GridSample BiCubic, Dropout support - #29783
Updated ONNX coverage after this PR: 74.8%
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Linear and Flex attention layers support - #29624
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Add Image Decoder ONNX Layer - #29785
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Dynamic KV-cache support - #29642
The core idea is: reserveKVCache() API to pre-allocate memory for attention caches upfront, which eliminates allocation overhead during token decoding. For LLM inference, simply call reserveKVCache(prompt_len + max_new_tokens) before the prefill stage so the decode loop runs without page allocations, significantly reducing per-token latency for models like Gemma3 and Qwen.
Speedups after this PR on AMD Ryzen 9 9950X 16-Core Processor device:
Qwen2.5-0.5B-Instruct, fp32, CPU, tok/s:
```
Tokens Before After Speedup
64 12.49 23.72 1.90×
128 10.37 23.14 2.23×
256 7.20 22.40 3.11×
512 4.25 21.03 4.95×
```
Gemma 3 1B-it, fp32, CPU, 512 tokens :
```
Tokens Before After Speedup
64 6.99 11.84 1.69×
128 5.84 11.72 2.01×
256 4.17 11.50 2.76×
512 2.47 11.15 4.51×
```
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Add Scan layer to the new engine #29577
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Added Cumprod and Causalconv layers in new dnn engine #29579
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Updated ONNX conformance list #29560
updated ONNX conformance list with onnx version = 1.22.0
Current ONNX coverage in OpenCV ENGINE_NEW is now **72.1%**
Merge with: https://github.com/opencv/opencv_extra/pull/1398
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FP8 support in core module #29369
Core part of https://github.com/opencv/opencv/issues/29313
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3rdparty(mlas): add missing power (ppc64le) kernel headers #29516
Closes: https://github.com/opencv/opencv/issues/29465
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Documentation fixes, Added How to use pre-built opencv doc #29288
closes: https://github.com/opencv/opencv/issues/29263
co-authored by: @kirtijindal14 @Akansha-977
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Extended Attention layer support #29333
Implemented present/past KV support.
Merge with: https://github.com/opencv/opencv_extra/pull/1381
Co-authored by: @Akansha-977
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Extended support for Resize and Split layers #29323
Merge with: https://github.com/opencv/opencv_extra/pull/1379
Key changes:
Resize layer:
_antialias_ (linear & cubic) :- PIL-style separable resampling with stretched filter support and edge-clamped, renormalized weights.
_axes_ (incl. reversed [3,2]) :- getOutShape, the scale override, and runtime _tf_crop_and_resize_ ROI parsing now map 2-element sizes/scales/roi by the axes order instead of assuming [2,3].
_keep_aspect_ratio_policy_ (not_larger/not_smaller) :- output size from min/max per-axis scale.
_half_pixel_symmetric_ :- new coordinate-transform mode + importer mapping.
_align_corners_ downsampling :- coordinate scale uses the unfloored scaled length (in−1)/(in·x_scale−1).
Split Layer:
_convertTo empty 1-D Mat:_ the empty-Mat branch collapsed a 1-D [0] to 2-D [1,0] via cv::Size(); now uses allowTransposed like the non-empty path.
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Fixed Out-of-Memory issue and added VLM sample #29221
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Added DISK feature extractor support #29073
closes: https://github.com/opencv/opencv/issues/27083
Merge with: https://github.com/opencv/opencv_extra/pull/1368/
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New sphinx-documentation build #29091
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Added SDPA layer (Scaled Dot Product Attention) #29104
Merge with: https://github.com/opencv/opencv_extra/pull/1374
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Attention graph fusion with MLAS FlashAttention #29126
Performance numbers for Owl-v2 model on intel i9:
```
ORT: Average inference time over 10 runs: 1411.55 ms (min 1399.75, max 1438.89)
NEW: Average inference time over 10 runs: 1078 ms (min 1048.04, max 1110.61)
```
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Fixed write return status in videoio module#29087
closes: https://github.com/opencv/opencv/issues/24287
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Added MLAS third party module and integrated into GeMM path #28934
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SIMD Kernel speedup for DNN layers #28889
This PR add following speedups for Grounding Dino tiny model.
For Device: Intel(R) Core(TM) i9-14900KS, x86, 32 Cores, ubuntu 24.04,
| Model | `ENGINE_NEW (Before)` | `ENGINE_NEW (After)` | `ENGINE_ORT` |
| :--- | :--- | :--- | :--- |
| **Grounding Dino Tiny** | 3130 ms | 1872.06 ms| 1800.18 ms|
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Fixed subgraph name scoping in new DNN engine #28971
closes: https://github.com/opencv/opencv/issues/23663, https://github.com/opencv/opencv/issues/19977
OpenCV extra: https://github.com/opencv/opencv_extra/pull/1362
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Added net profiling support #28752
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Added custom layer support in new DNN engine #28963
Closes: https://github.com/opencv/opencv/issues/26200
Merge with: https://github.com/opencv/opencv_extra/pull/1358
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Extend attention fusion for runtime QK scale and add MatMul to Gemm rewriter #28957
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Extended primitive core operations to support new types #28964
The support was already there, this PR tests them on edge cases and patch the fix.
closes: https://github.com/opencv/opencv/issues/24580
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Fixed dequantizelinear slicing bug #28966
closes: https://github.com/opencv/opencv/issues/25999
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Added fully functional convTranspose layer to new DNN engine #27560
Closes https://github.com/opencv/opencv/issues/26307
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Added Attention fusion and thin gemm support #28859
Merge with: https://github.com/opencv/opencv_extra/pull/1350
Performance numbers after these optimizations:
For Device: Intel(R) Core(TM) i9-14900KS, x86, 32 Cores, ubuntu 24.04,
| Model | `ENGINE_NEW (Before)` | `ENGINE_NEW (After)` | `ENGINE_ORT` |
| :--- | :--- | :--- | :--- |
| **BERT** |26.3 ms| 9.15 ms| 9.13 ms|
| **ViT** | 79.65 ms| 63.23 ms| 32.3 ms|
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- [x] I agree to contribute to the project under Apache 2 License.
- [x] To the best of my knowledge, the proposed patch is not based on a code under GPL or another license that is incompatible with OpenCV
- [x] The PR is proposed to the proper branch
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Added QLinear layer support #28811
closes: https://github.com/opencv/opencv/issues/26310
### Pull Request Readiness Checklist
See details at https://github.com/opencv/opencv/wiki/How_to_contribute#making-a-good-pull-request
- [x] I agree to contribute to the project under Apache 2 License.
- [x] To the best of my knowledge, the proposed patch is not based on a code under GPL or another license that is incompatible with OpenCV
- [x] The PR is proposed to the proper branch
- [x] There is a reference to the original bug report and related work
- [x] There is accuracy test, performance test and test data in opencv_extra repository, if applicable
Patch to opencv_extra has the same branch name.
- [x] The feature is well documented and sample code can be built with the project CMake
Parallelize DNN layers using chunking #28821
At a high level, I replaced tensor-level parallelism with chunk-level parallelism. Previously, parallel_for_ was dispatched over the number of input or output tensors i.e. one thread handled one whole tensor's copy.
The new approach precomputes each tensor's destination offset and per-slice size upfront, then slices the total byte work into fixed 64 KB chunks. The full chunk count is handed to parallel_for_ as a single flat range, and each worker decodes its chunk index back into (tensor, slice, byte_offset) using a prefix-sum table before running a plain memcpy on its piece. A small-size threshold falls back to the sequential path so we don't get threading overhead on small tensors.
Performance numbers after these optimizations:
For Device: Intel(R) Core(TM) i9-14900KS, x86, 32 Cores, ubuntu 24.04,
| Model | `ENGINE_NEW` | `ENGINE_ORT` |
| :--- | :--- | :--- |
| **YOLOv8n** |10.9 ms| 12.15 ms|
| **YOLOv5n** | 8.36 ms| 9.23 ms|
| **YOLOX-S** | 23.46 ms| 25.16 ms|
For Device: Macbook M1 Air
| Model | `ENGINE_NEW` | `ENGINE_ORT` |
| :--- | :--- | :--- |
| **YOLOv8n** |34.45 ms| 42.52 ms|
| **YOLOv5n** | 31.62 ms| 25.52 ms|
| **YOLOX-S** | 88.9 ms| 116.7 ms|
### Pull Request Readiness Checklist
See details at https://github.com/opencv/opencv/wiki/How_to_contribute#making-a-good-pull-request
- [x] I agree to contribute to the project under Apache 2 License.
- [x] To the best of my knowledge, the proposed patch is not based on a code under GPL or another license that is incompatible with OpenCV
- [x] The PR is proposed to the proper branch
- [x] There is a reference to the original bug report and related work
- [x] There is accuracy test, performance test and test data in opencv_extra repository, if applicable
Patch to opencv_extra has the same branch name.
- [x] The feature is well documented and sample code can be built with the project CMake