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I’m trying to train a network by my own loss function. I can train a network with loss functions are included in the PyTorch.

But, I meet the challenge when I am trying to define my own loss function. Indeed, I need to a correct example to train a network by custom loss function in details

My loss function is:

enter image description here

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  • How is your loss function defined? Oct 21, 2018 at 6:17
  • Any node in the computational graph supports the .backward method and hence can serve as a loss function. You just need to compute that value loss = ... and then call loss.backward. Loss is always minimized.
    – a_guest
    Oct 21, 2018 at 7:59
  • The reference seems to be taken from here: arxiv.org/pdf/1704.03135.pdf
    – kmario23
    Oct 21, 2018 at 11:22

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