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import torch |
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class BalancedPositiveNegativeSampler(object): |
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""" |
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This class samples batches, ensuring that they contain a fixed proportion of positives |
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""" |
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def __init__(self, batch_size_per_image, positive_fraction): |
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""" |
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Arguments: |
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batch_size_per_image (int): number of elements to be selected per image |
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positive_fraction (float): percentace of positive elements per batch |
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""" |
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self.batch_size_per_image = batch_size_per_image |
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self.positive_fraction = positive_fraction |
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def __call__(self, matched_idxs): |
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""" |
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Arguments: |
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matched idxs: list of tensors containing -1, 0 or positive values. |
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Each tensor corresponds to a specific image. |
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-1 values are ignored, 0 are considered as negatives and > 0 as |
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positives. |
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Returns: |
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pos_idx (list[tensor]) |
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neg_idx (list[tensor]) |
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Returns two lists of binary masks for each image. |
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The first list contains the positive elements that were selected, |
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and the second list the negative example. |
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""" |
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pos_idx = [] |
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neg_idx = [] |
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for matched_idxs_per_image in matched_idxs: |
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positive = torch.nonzero(matched_idxs_per_image >= 1).squeeze(1) |
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negative = torch.nonzero(matched_idxs_per_image == 0).squeeze(1) |
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num_pos = int(self.batch_size_per_image * self.positive_fraction) |
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num_pos = min(positive.numel(), num_pos) |
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num_neg = self.batch_size_per_image - num_pos |
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num_neg = min(negative.numel(), num_neg) |
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perm1 = torch.randperm(positive.numel(), device=positive.device)[:num_pos] |
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perm2 = torch.randperm(negative.numel(), device=negative.device)[:num_neg] |
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pos_idx_per_image = positive[perm1] |
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neg_idx_per_image = negative[perm2] |
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pos_idx_per_image_mask = torch.zeros_like( |
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matched_idxs_per_image, dtype=torch.bool |
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) |
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neg_idx_per_image_mask = torch.zeros_like( |
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matched_idxs_per_image, dtype=torch.bool |
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) |
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pos_idx_per_image_mask[pos_idx_per_image] = 1 |
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neg_idx_per_image_mask[neg_idx_per_image] = 1 |
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pos_idx.append(pos_idx_per_image_mask) |
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neg_idx.append(neg_idx_per_image_mask) |
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return pos_idx, neg_idx |
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