forked from mindspore-Ecosystem/mindspore
Fixing ratio bug with BoundingBoxAugment
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@ -26,7 +26,7 @@ namespace dataset {
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const float BoundingBoxAugmentOp::kDefRatio = 0.3;
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BoundingBoxAugmentOp::BoundingBoxAugmentOp(std::shared_ptr<TensorOp> transform, float ratio)
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: ratio_(ratio), transform_(std::move(transform)) {
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: ratio_(ratio), uniform_(0, 1), transform_(std::move(transform)) {
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rnd_.seed(GetSeed());
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}
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@ -34,41 +34,38 @@ Status BoundingBoxAugmentOp::Compute(const TensorRow &input, TensorRow *output)
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IO_CHECK_VECTOR(input, output);
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BOUNDING_BOX_CHECK(input); // check if bounding boxes are valid
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uint32_t num_of_boxes = input[1]->shape()[0];
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uint32_t num_to_aug = num_of_boxes * ratio_; // cast to int
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std::vector<uint32_t> boxes(num_of_boxes);
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std::vector<uint32_t> selected_boxes;
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for (uint32_t i = 0; i < num_of_boxes; i++) boxes[i] = i;
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// sample bboxes according to ratio picked by user
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std::sample(boxes.begin(), boxes.end(), std::back_inserter(selected_boxes), num_to_aug, rnd_);
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std::shared_ptr<Tensor> crop_out;
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std::shared_ptr<Tensor> res_out;
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std::shared_ptr<CVTensor> input_restore = CVTensor::AsCVTensor(input[0]);
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for (uint32_t i = 0; i < num_to_aug; i++) {
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float min_x = 0;
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float min_y = 0;
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float b_w = 0;
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float b_h = 0;
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// get the required items
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RETURN_IF_NOT_OK(input[1]->GetItemAt<float>(&min_x, {selected_boxes[i], 0}));
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RETURN_IF_NOT_OK(input[1]->GetItemAt<float>(&min_y, {selected_boxes[i], 1}));
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RETURN_IF_NOT_OK(input[1]->GetItemAt<float>(&b_w, {selected_boxes[i], 2}));
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RETURN_IF_NOT_OK(input[1]->GetItemAt<float>(&b_h, {selected_boxes[i], 3}));
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RETURN_IF_NOT_OK(Crop(input_restore, &crop_out, static_cast<int>(min_x), static_cast<int>(min_y),
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static_cast<int>(b_w), static_cast<int>(b_h)));
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// transform the cropped bbox region
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RETURN_IF_NOT_OK(transform_->Compute(crop_out, &res_out));
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// place the transformed region back in the restored input
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std::shared_ptr<CVTensor> res_img = CVTensor::AsCVTensor(res_out);
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// check if transformed crop is out of bounds of the box
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if (res_img->mat().cols > b_w || res_img->mat().rows > b_h || res_img->mat().cols < b_w ||
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res_img->mat().rows < b_h) {
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// if so, resize to fit in the box
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std::shared_ptr<TensorOp> resize_op =
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std::make_shared<ResizeOp>(static_cast<int32_t>(b_h), static_cast<int32_t>(b_w));
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RETURN_IF_NOT_OK(resize_op->Compute(std::static_pointer_cast<Tensor>(res_img), &res_out));
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res_img = CVTensor::AsCVTensor(res_out);
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for (uint32_t i = 0; i < num_of_boxes; i++) {
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// using a uniform distribution to ensure op happens with probability ratio_
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if (uniform_(rnd_) < ratio_) {
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float min_x = 0;
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float min_y = 0;
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float b_w = 0;
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float b_h = 0;
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// get the required items
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RETURN_IF_NOT_OK(input[1]->GetItemAt<float>(&min_x, {i, 0}));
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RETURN_IF_NOT_OK(input[1]->GetItemAt<float>(&min_y, {i, 1}));
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RETURN_IF_NOT_OK(input[1]->GetItemAt<float>(&b_w, {i, 2}));
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RETURN_IF_NOT_OK(input[1]->GetItemAt<float>(&b_h, {i, 3}));
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RETURN_IF_NOT_OK(Crop(input_restore, &crop_out, static_cast<int>(min_x), static_cast<int>(min_y),
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static_cast<int>(b_w), static_cast<int>(b_h)));
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// transform the cropped bbox region
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RETURN_IF_NOT_OK(transform_->Compute(crop_out, &res_out));
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// place the transformed region back in the restored input
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std::shared_ptr<CVTensor> res_img = CVTensor::AsCVTensor(res_out);
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// check if transformed crop is out of bounds of the box
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if (res_img->mat().cols > b_w || res_img->mat().rows > b_h || res_img->mat().cols < b_w ||
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res_img->mat().rows < b_h) {
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// if so, resize to fit in the box
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std::shared_ptr<TensorOp> resize_op =
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std::make_shared<ResizeOp>(static_cast<int32_t>(b_h), static_cast<int32_t>(b_w));
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RETURN_IF_NOT_OK(resize_op->Compute(std::static_pointer_cast<Tensor>(res_img), &res_out));
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res_img = CVTensor::AsCVTensor(res_out);
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}
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res_img->mat().copyTo(input_restore->mat()(cv::Rect(min_x, min_y, res_img->mat().cols, res_img->mat().rows)));
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}
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res_img->mat().copyTo(input_restore->mat()(cv::Rect(min_x, min_y, res_img->mat().cols, res_img->mat().rows)));
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}
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(*output).push_back(std::move(std::static_pointer_cast<Tensor>(input_restore)));
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(*output).push_back(input[1]);
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@ -53,6 +53,7 @@ class BoundingBoxAugmentOp : public TensorOp {
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private:
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float ratio_;
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std::mt19937 rnd_;
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std::uniform_real_distribution<float> uniform_;
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std::shared_ptr<TensorOp> transform_;
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};
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} // namespace dataset
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@ -84,8 +84,8 @@ def test_bounding_box_augment_with_crop_op(plot_vis=False):
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dataVoc1 = ds.VOCDataset(DATA_DIR, task="Detection", mode="train", decode=True, shuffle=False)
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dataVoc2 = ds.VOCDataset(DATA_DIR, task="Detection", mode="train", decode=True, shuffle=False)
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# Ratio is set to 1 to apply rotation on all bounding boxes.
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test_op = c_vision.BoundingBoxAugment(c_vision.RandomCrop(50), 0.5)
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# Ratio is set to 0.9 to apply RandomCrop of size (50, 50) on 90% of the bounding boxes.
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test_op = c_vision.BoundingBoxAugment(c_vision.RandomCrop(50), 0.9)
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# map to apply ops
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dataVoc2 = dataVoc2.map(input_columns=["image", "annotation"],
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