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# Copyright (c) OpenMMLab. All rights reserved.
import torch
import torch.nn as nn
from mmocr.models.builder import LOSSES
@LOSSES.register_module()
class DiceLoss(nn.Module):
def __init__(self, eps=1e-6):
super().__init__()
assert isinstance(eps, float)
self.eps = eps
def forward(self, pred, target, mask=None):
pred = pred.contiguous().view(pred.size()[0], -1)
target = target.contiguous().view(target.size()[0], -1)
if mask is not None:
mask = mask.contiguous().view(mask.size()[0], -1)
pred = pred * mask
target = target * mask
a = torch.sum(pred * target)
b = torch.sum(pred)
c = torch.sum(target)
d = (2 * a) / (b + c + self.eps)
return 1 - d