Commit Graph
460 Commits
Author SHA1 Message Date
Abhishek Gola 53d9a67cf3 Merge pull request #28741 from abhishek-gola:int8_block_layout
Int8 block layout support #28741

After this patch we got the following speed ups on **resnet50-qdq.onnx** model.

- Inference time now: **_~6.6ms_** (inference time using onnxruntime is ~5.7ms).
- Inference time before: _**~11.5ms**_ [after QDQ PR #28595]
- Speed up: _**~42.6% or 1.74x**_
- Device details:
- Model name: Intel(R) Core(TM) i9-14900KS, x86, 32 Cores, ubuntu 24.04, 

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2026-04-12 19:40:03 +03:00
Abhishek Gola 2ec6a6bb65 Merge pull request #28588 from abhishek-gola:ORT_GPU_wrapper
Added OnnxRuntime GPU wrapper #28588

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2026-04-06 15:40:58 +03:00
Jorge Velez a49a293d3c Merge pull request #27534 from JorgeV92:gsoc2025-tokenizer
GSoC 2025: Add Tokenizer Support to DNN Module #27534

merge with https://github.com/opencv/opencv_extra/pull/1276

### Summary
This pull request introduces initial support for a tokenizer module under `modules/dnn/src/tokenizer` as part of Google Summer of Code 2025 (Project: Tokenization for OpenCV DNN).

### Status
- [x] Project structure in place
- [x] Initial BPE tokenizer loading
- [x] Regex splitting (in progress)
- [x] Encoding logic for GPT-2 tokenizer (in progress)
- [ ] Documentation (to be improved)

### Goals
The goal is to support Hugging Face-compatible tokenization (e.g., GPT-2) natively in C++ to be integrated with DNN inference pipelines. 

The core pipeline lives in `dnn/src/tokenizer/core_bpe.hpp` and `dnn/src/tokenizer/encoding.hpp`. For Unicode handling I’m using `dnn/src/tokenizer/unicode.hpp`, which is adapted from llama.cpp.


### Feedback
Please share early feedback on:
- General design structure
- Integration strategy with `dnn`
- Code organization or naming conventions

### Reference
Project: https://summerofcode.withgoogle.com/programs/2025/projects/79SW6eNK
2026-04-06 10:46:13 +03:00
Abhishek Gola e59506bbf5 Merge pull request #28595 from abhishek-gola:qdq_support
* added qdq fusion

* Added VNNI optimizations
2026-03-31 15:16:09 +03:00
Abhishek Gola 40ce5b4132 Merge pull request #28637 from abhishek-gola:old_dnn_tickets_cleanup
Added Output Tensor Names support in new DNN engine #28637

closes: https://github.com/opencv/opencv/issues/26201

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2026-03-26 15:07:56 +03:00
Vadim Pisarevsky 1b483ffea6 Merge pull request #28585 from vpisarev:dnn_block_layout_v5
Block layout-based convolution in DNN #28585

merge together with https://github.com/opencv/opencv_extra/pull/1321

Some core parts of the new engine in DNN module have been revised substantially:

1. all tests seem to pass, except for `Test_Graph_Simplifier.ResizeSubgraph`, which has been disabled because it does not take the newly added `TransformLayoutLayer` into account. The test should be reworked perhaps.
1. convolution and related operations (maxpool/avgpool) now use so-called block layout (`DATA_LAYOUT_BLOCK`), where `NxCxHxW` tensors are represented  as `NxC1xHxWxC0`, where `C1=(C + C0-1)/C0` and `C0` is a power-of-two (usually 4, 8, 16 or 32).
1. graph is now pre-processed and `TransformLayoutLayer` is inserted to convert data from NCHW or NHWC layout to the block layout or vice versa. The transformations are done in a lazy way only when they are really needed. For example, in the whole Resnet only 2 transformations are performed.
1. transformer-based models and other models that do not use convolutions will run as usual, without going to block layout.
1. there is yet another graph preprocessing stage added that embeds constant weights/scale and bias into convolution and batch norm layers.
1. 'batchnorm', 'activation' and 'adding a residual' are now fused with convolution, just like in the old engine. That brings some noticeable acceleration.
1. optimized convolution kernels have been added.
     * depthwise convolution, as well as maxpool and avgpool support C0=4, 8, 16 etc. _as long as_  C0 is divisible by the number of fp32 lanes in a SIMD register of the target platform (e.g. on ARM with NEON there must be `C0 % 4 == 0`, on x64 with AVX2 `C0 % 8 == 0`).
     * non-depthwise convolution only supports C0=8 for now. C0=8 seems to be a sweetspot for ARM with NEON, x64 with AVX2 or RISC-V with RVV (with 128- or 256-bit registers). For some platforms with dedicated matrix accelerators C0=16 or even C0=32 might be more efficient, but we could add the respective kernels later.
     * only fp32 kernels have been added. fp16/bf16 kernels might be added a little later.

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2026-03-13 17:09:27 +03:00
Abhishek Gola 95c66292b5 Merge pull request #28444 from abhishek-gola:added_ORT_wrapper
Added ONNX Runtime as an optional wrapper #28444

This PR adds ONNXRuntime (ORT) as an _optional_ wrapper, which can be enabled by adding **WITH_ONNXRUNTIME** flag in CMake command.

Using ORT wrapper the inference time for _resnet50.onnx model_ has come to _**~7ms**_ from _**~14ms**_.
Also, we are able to run models like `ssd_mobilenet_v1.onnx`.
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2026-02-27 15:47:12 +03:00
Alexander Smorkalov ca69b54521 Merge pull request #28522 from abhishek-gola:batchnorm_layer_add
Added Batch Normalization layer to new DNN engine
2026-02-15 10:31:23 +03:00
Alexander Smorkalov 82ff8e45e9 Merge branch 4.x 2026-02-14 15:37:33 +03:00
Abhishek Gola 6420d2b929 Added batchnorm layer 2026-02-11 16:22:20 +05:30
Abhishek Gola 1719aa1339 Merge pull request #28453 from abhishek-gola:roialign_layer_add
Added RoiAlign layer support in new DNN engine #28453

Fixes `Unsupported Operation: RoiAlign` issue in https://github.com/opencv/opencv/issues/20258 and https://github.com/opencv/opencv/issues/22099, model parsing is successful now.

Merge with: https://github.com/opencv/opencv_extra/pull/1310

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2026-02-10 14:45:56 +03:00
Abhishek Gola abc9100c9b added layer norm 2026-01-29 12:58:31 +05:30
nklskyoy d851f3bc80 Merge pull request #27988 from nklskyoy:attention-2-layer
AttentionOnnxAiLayer #27988 
 
Implements https://onnx.ai/onnx/operators/onnx__Attention.html#attention-23

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2026-01-26 15:58:13 +03:00
Alexander Smorkalov e63d2a12f0 pre: OpenCV 4.13.0 (version++). 2025-12-23 18:31:50 +03:00
Abhishek Gola eb36a78f5e Merge pull request #28075 from abhishek-gola:hann-hamming-blackman-support
Added Hannwindow, Hammingwindow & Blackmanwindow support #28075

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2025-12-23 16:37:45 +03:00
Abhishek Gola 2ea31d5075 Merge pull request #28110 from abhishek-gola:randomNormalLike_layer
Added RandomNormalLike layer for fixing ViTs parsing issue #28110
 
closes: https://github.com/opencv/opencv/issues/27603
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2025-12-16 20:48:36 +03:00
nklskyoy d218732a70 Merge pull request #28104 from nklskyoy:rms-norm
RMSNorm: reference cpu impl #28104

https://onnx.ai/onnx/operators/onnx__RMSNormalization.html

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2025-12-13 09:41:44 +03:00
nklskyoy 74fae2770e Merge pull request #28031 from nklskyoy:rotary-position-layer
Rotary position layer #28031

Implemented https://onnx.ai/onnx/operators/onnx__RotaryEmbedding.html#rotaryembedding-23

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2025-11-25 15:12:17 +03:00
Abhishek Gola b8c9c070ea Merge pull request #27894 from abhishek-gola:affine_layer_add
Added affine grid layer to new DNN engine #27894

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2025-11-11 16:36:08 +03:00
Abhishek Gola 21b2c91814 Merge pull request #27941 from abhishek-gola:dft_layer_add
Added DFT layer to new DNN engine #27941

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2025-11-11 13:28:24 +03:00
Abhishek Gola e9298fb73e Merge pull request #27902 from abhishek-gola:onehot_layer_add
Added Onehot layer support to new DNN engine #27902

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2025-10-30 22:21:14 +03:00
Abhishek Gola e794c11b0b Merge pull request #27892 from abhishek-gola:center_crop_pad_layer
Added center crop pad layer to new DNN engine #27892

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2025-10-13 15:11:23 +03:00
Abhishek Gola 91768f9a27 Merge pull request #27809 from abhishek-gola:softmax_cross_entropy
Added support for SCE and NLL losses #27809

This pull request adds the support for Negative Log-Likelihood loss and Softmax Cross-Entropy loss in new DNN engine.

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2025-10-11 12:45:17 +03:00
Abhishek Gola 93385c6cdf Merge pull request #27816 from abhishek-gola:reduce_layer
Extended Reduce layer support in new DNN engine #27816

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2025-10-10 10:11:19 +03:00
Abhishek Gola 2470c07f1b Merge pull request #27698 from abhishek-gola:add_cast_layer
Added cast and castlike layers support in new DNN engine #27698

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2025-10-04 13:22:30 +03:00
Abhishek Gola d79e95c018 Merge pull request #27674 from abhishek-gola:nonmaxsuppression_layer_add
Added nonmaxsuppression (NMS) layer to new DNN engine #27674

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2025-09-19 12:55:37 +03:00
Abhishek Gola 68a5aea843 Merge pull request #27586 from abhishek-gola:resize_layer_add
Added fully functional resize layer to new DNN engine #27586

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2025-09-18 09:17:04 +03:00
Abhishek Gola cd4f2c2561 Merge pull request #27676 from abhishek-gola:unique_layer_add
Added unique layer to new DNN engine #27676

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2025-09-17 16:04:52 +03:00
Vadim Pisarevsky bdab54f79e Merge pull request #27757 from vpisarev:matshape_inside_mat
Use MatShape instead of MatSize inside cv::Mat/cv::UMat #27757

**Merge together with https://github.com/opencv/opencv_contrib/pull/3996**
---

This PR continues cv::Mat/cv::UMat refactoring. See #26056, where `MatShape` was introduced. Now it's put inside cv::Mat/cv::UMat instead of a weird `MatSize`. MatSize is now an alias for MatShape:

**before:**

```
struct MatShape { ... };
struct MatSize { ... };

struct Mat {
    ...
    int dims;
    int rows;
    int cols;

    ...

    MatShape shape() const { ... /* constructs MatShape out of MatSize and returns it;
                                    layout is always 'unknown', because we don't store it */ }

    MatSize size; // size is not valid without the parent cv::Mat,
                  // because size.p may point to Mat::rows or to Mat::cols,
                  // depending on the dimensionality, and dims() returns Mat::dims.
    MatStep step; // may allocate memory, depending on the dimensionality.
    ...
};
```

**after:**

```
struct MatShape { ... };
typedef MatShape MatSize; // they are now synonyms

struct Mat {
    ...
    int dims;
    int rows;
    int cols;

    ...

    MatShape shape() const { return size; } // just return the embedded shape (including the proper layout information)

    MatSize size; // size is self-contained data structure that can be used without the parent cv::Mat.
                  // size.dims is now a copy of dims; size.p[*] contains copies of Mat::rows and Mat::cols when dims <= 2.
    MatStep step; // does not allocate extra memory buffers.
    ...
};
```

There are several reasons to do that:

1. the main reason is to be able to store data layout (MatShape::layout) inside each cv::Mat/cv::UMat. This is necessary for the proper shape inference in DNN module. In particular, it's necessary for the next step of DNN inference optimization where we introduce block-layout-optimized convolution and other operations. Later on, we can use layout information to support non-interleaved images (e.g. RRR...GGG...BBB...) or even batches of such images in core/imgproc modules.
2. the other reason is to represent 3D/4D/5D etc. tensors as cv::Mat/cv::UMat instances more conveniently, without extra dynamic memory allocation. Before this patch we allocated some memory buffers dynamically to store shape & steps for more than 2D arrays. Now the whole cv::Mat/cv::UMat header can be stored completely on stack/in a container. Creating another copy of Mat/UMat header is now done more efficiently.
3. the third reason is to introduce the new coding pattern: `dst.create(src.size, <dst_type>);`. The pattern is suitable for most of element-wise (including cloning) and filtering operations. This pattern does not only look crisp and self-documenting, it will also automatically copy shape (including layout) from the source tensor into the destination matrix/tensor.
4. in the future we might add `colorspace` member to MatShape that will allow to distinguish RGB from BGR or NV12. `dst.create(src.size, <dst_type>);` will then copy the colorspace information as well.

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2025-09-15 15:03:34 +03:00
Abhishek Gola 105a3c335b Merge pull request #27701 from abhishek-gola:nonzero_layer_add
Added nonzero layer to new DNN engine #27701

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2025-09-12 08:51:20 +03:00
Abhishek Gola f67ae273b3 Merge pull request #27700 from abhishek-gola:gridsample_layer_add
Added gridsample layer to new DNN engine #27700

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2025-09-09 14:45:13 +03:00
Abhishek Gola defc988c0d Merge pull request #27666 from abhishek-gola:bitshift_layer_add
Added bitshift layer to new DNN engine #27666

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2025-08-18 17:33:28 +03:00
Abhishek Gola b00c38c57e Merge pull request #27658 from abhishek-gola:det_layer_add
Added Determinant (Det) layer to new DNN engine #27658

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2025-08-14 12:07:40 +03:00
Abhishek Gola b35104d63d Merge pull request #27660 from abhishek-gola:isinf_layer_add
Added IsInf layer to new DNN engine #27660

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2025-08-14 08:49:18 +03:00
Abhishek Gola d5f054cd43 Merge pull request #27661 from abhishek-gola:isNan_layer_add
Added IsNan layer to new DNN engine #27661

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2025-08-13 21:08:53 +03:00
Abhishek Gola 38a72d57c1 Merge pull request #27656 from abhishek-gola:size_layer_add
Added Size layer to new DNN engine #27656

Merge with https://github.com/opencv/opencv_extra/pull/1274

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2025-08-12 14:38:21 +03:00
Abhishek Gola 094430c8f0 Added support to clip layer 2025-08-04 15:53:37 +05:30
Abhishek Gola 7e65c42964 Merge pull request #27547 from abhishek-gola:topk_layer_add
Added TopK layer with dynamic K support for new DNN engine #27547

This pull request adds TopK layer support to new DNN engine along with dynamic K support.

Initial version inherited from https://github.com/opencv/opencv/pull/26731. Credits to Abduragim.

Closes:
- https://github.com/opencv/opencv/issues/27061
- https://github.com/opencv/opencv/issues/25712

Also closes the topk issue for below issues but having (`Unsupported operations:        NonZero` for new dnn engine) which is unrelated to topk.
- https://github.com/opencv/opencv/issues/23663 
- https://github.com/opencv/opencv/issues/23297

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2025-07-28 16:15:44 +03:00
Alexander Smorkalov bd67770dcb Merge branch 4.x 2025-07-22 09:47:19 +03:00
nklskyoy 06a78c2390 Merge pull request #27527 from nklskyoy:trilu-layer
Trilu layer #27527

Trilu layer https://onnx.ai/onnx/operators/onnx__Trilu.html is needed for importing paligemma

Merged with https://github.com/opencv/opencv_extra/pull/1264

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2025-07-17 08:55:07 +03:00
Abhishek Gola 709eabda16 Merge pull request #27508 from abhishek-gola:if_layer_add
IfLayer add to new DNN engine #27508

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2025-07-16 09:01:54 +03:00
Alexander Smorkalov 7cb7a6fd20 pre: OpenCV 4.12.0 (version++). 2025-06-19 11:03:59 +03:00
Alexander Smorkalov 350b211b57 Merge branch 4.x 2025-06-10 10:16:50 +03:00
Myron Rodrigues 344f8c6400 Merge pull request #27363 from MRo47:openvino-npu-support
Feature: Add OpenVINO NPU support #27363

## Why
- OpenVINO now supports inference on integrated NPU devices in intel's Core Ultra series processors.
- Sometimes as fast as GPU, but should use considerably less power.

## How
- The NPU plugin is now available as "NPU" in openvino `ov::Core::get_available_devices()`.
- Removed the guards and checks for NPU in available targets for Inference Engine backend.

## Test example

### Pre-requisites
- Intel [Core Ultra series processor](https://www.intel.com/content/www/us/en/products/details/processors/core-ultra/edge.html#tab-blade-1-0)
- [Intel NPU driver](https://github.com/intel/linux-npu-driver/releases)
- OpenVINO 2023.3.0+ (Tested on 2025.1.0)

### Example
```cpp
#include <opencv2/dnn.hpp>
#include <iostream>

int main(){
    cv::dnn::Net net = cv::dnn::readNet("../yolov8s-openvino/yolov8s.xml", "../yolov8s-openvino/yolov8s.bin");
    cv::Size net_input_shape = cv::Size(640, 480);
    std::cout << "Setting backend to DNN_BACKEND_INFERENCE_ENGINE and target to DNN_TARGET_NPU" << std::endl;
    net.setPreferableBackend(cv::dnn::DNN_BACKEND_INFERENCE_ENGINE);
    net.setPreferableTarget(cv::dnn::DNN_TARGET_NPU);

    cv::Mat image(net_input_shape, CV_8UC3);
    cv::randu(image, cv::Scalar(0, 0, 0), cv::Scalar(255, 255, 255));
    cv::Mat blob = cv::dnn::blobFromImage(
        image, 1, net_input_shape, cv::Scalar(0, 0, 0), true, false, CV_32F);
    net.setInput(blob);
    std::cout << "Running forward" << std::endl;
    cv::Mat result = net.forward();
    std::cout << "Output shape: " << result.size << std::endl; // Output shape: 1 x 84 x 6300
}
```

model files [here](https://limewire.com/d/bPgiA#BhUeSTBnMc)

docker image used to build opencv: [ghcr.io/mro47/opencv-builder](https://github.com/MRo47/opencv-builder/blob/main/Dockerfile)

Closes #26240

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2025-05-27 14:13:49 +03:00
Alexander Smorkalov f8de2e06e6 Merge branch 4.x 2025-05-07 13:17:42 +03:00
utibenkei c774dd41cf Add CV_WRAP to registerOutput for language bindings support 2025-04-26 01:32:11 +09:00
utibenkei 97f73ba0b5 Merge pull request #27228 from utibenkei:fix_java_enum_wrapper
Explicitly specify enum type scopes to improve Java wrapper generation #27228 

Changed DataLayout and ImagePaddingMode to dnn::DataLayout and dnn::ImagePaddingMode to explicitly specify their scopes. This allows gen_java.py to correctly register  disc_type, preventing constructors and methods using these enum types from being skipped during Java wrapper generation.

Similarly updated QRCodeEncoder::CorrectionLevel and QRCodeEncoder::EncodeMode with explicit scope declarations.

Also added a new Java test class `DnnBlobFromImageWithParamsTest` based on: https://github.com/opencv/opencv/blob/4.x/modules/dnn/test/test_misc.cpp#L133-L243

Related issues
#23753 

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2025-04-21 20:51:38 +03:00
Alexander Smorkalov a2ce9e1bac pre: OpenCV 4.11.0 (version++) 2024-12-23 13:58:08 +03:00
Alexander Smorkalov ff142b8ef9 pre: OpenCV 5.0.0-alpha (version++). 2024-11-27 12:59:28 +03:00
alexlyulkov 3672a14b42 Merge pull request #26394 from alexlyulkov:al/new-engine-tf-parser
Modified tensorflow parser for the new dnn engine #26394

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2024-11-27 09:15:20 +03:00