backward function in PyTorch

十年热恋 提交于 2019-12-01 06:09:41

问题


i have some question about pytorch's backward function i don't think i'm getting the right output

import numpy as np
import torch
from torch.autograd import Variable
a = Variable(torch.FloatTensor([[1,2,3],[4,5,6]]), requires_grad=True) 
out = a * a
out.backward(a)
print(a.grad)

the output is

tensor([[ 2.,  8., 18.],
        [32., 50., 72.]])

maybe it's 2*a*a

but i think the output suppose to be

tensor([[ 2.,  4., 6.],
        [8., 10., 12.]])

2*a. cause d(x^2)/dx=2x


回答1:


Please read carefully the documentation on backward() to better understand it.

By default, pytorch expects backward() to be called for the last output of the network - the loss function. The loss function always outputs a scalar and therefore, the gradients of the scalar loss w.r.t all other variables/parameters is well defined (using the chain rule).
Thus, by default, backwards() is called on a scalar tensor and expects no arguments.
For example:

a = torch.tensor([[1,2,3],[4,5,6]], dtype=torch.float, requires_grad=True)
for i in range(2):
  for j in range(3):
    out = a[i,j] * a[i,j]
    out.backward()
print(a.grad)

yields

tensor([[ 2.,  4.,  6.],
        [ 8., 10., 12.]])

As expected: d(a^2)/da = 2a.

However, when you call backwards on the 2-by-3 out tensor (no longer a scalar function) - what do you expects a.grad to be? You'll actually need a 2-by-3-by-2-by-3 output: d out[i,j] / d a[k,l](!)
Pytorch does not support this non-scalar function derivatives.
Instead, pytorch assumes out is only an intermediate tensor and somewhere "upstream" there is a scalar loss function, that through chain rule provides d loss/ d out[i,j]. This "upstream" gradient is of size 2-by-3 and this is actually the argument you provide backward in this case: out.backward(g) where g_ij = d loss/ d out_ij.
The gradients are then calculated by chain rule d loss / d a[i,j] = (d loss/d out[i,j]) * (d out[i,j] / d a[i,j])
Since you provided a as the "upstream" gradients you got

a.grad[i,j] = 2 * a[i,j] * a[i,j]

If you were to provide the "upstream" gradients to be all ones

out.backward(torch.ones(2,3))
print(a.grad)

yields

tensor([[ 2.,  4.,  6.],
        [ 8., 10., 12.]])

As expected.

It's all in the chain rule.



来源:https://stackoverflow.com/questions/57248777/backward-function-in-pytorch

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