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This repository was archived by the owner on Oct 26, 2022. It is now read-only.

Problems in comparing parameters #146

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@leonleeldc

Hi,

I am implementing some weights penalty to the parameters passed into optimizers. But I found that after I use --fp 16, the penalty weights are still have parameters with dtype torch.float16 while the model parameters changed from 16 to 32 in the end.

Then, I defined a function to convert params back to float16,

def convertFP16(params):
fp16_params = []
for p in params:
p16 = torch.nn.Parameter(p.type(torch.float16))
p16.grad = torch.zeros_like(p16.data)
if hasattr(p, "param_group"):
p16.param_group = p.param_group
fp16_params.append(p16)
count = 0
for name, param in fp16_params:
if param in fp16_params:
print(count)
count+=1
return fp16_params

But even so, it is still not working.

==================p======================
Parameter containing:
tensor([[ 0.0251, 0.0024, 0.0033, ..., 0.0007, -0.0041, 0.0183],
[ 0.0001, 0.0126, -0.0248, ..., -0.0026, -0.0132, 0.0211],
[-0.0163, 0.0131, -0.0155, ..., -0.0236, -0.0059, 0.0060],
...,
[-0.0058, -0.0003, 0.0309, ..., 0.0243, -0.0067, -0.0345],
[-0.0377, -0.0127, -0.0095, ..., 0.0212, 0.0046, 0.0353],
[-0.0137, 0.0203, -0.0120, ..., -0.0111, -0.0202, 0.0170]],
device='cuda:0', dtype=torch.float16, requires_grad=True)
=========================reg_params_list[0]==============
Parameter containing:
tensor([[ 0.0251, 0.0024, 0.0033, ..., 0.0007, -0.0041, 0.0183],
[ 0.0001, 0.0126, -0.0248, ..., -0.0026, -0.0132, 0.0211],
[-0.0163, 0.0131, -0.0155, ..., -0.0236, -0.0059, 0.0060],
...,
[-0.0058, -0.0003, 0.0309, ..., 0.0243, -0.0067, -0.0345],
[-0.0377, -0.0127, -0.0095, ..., 0.0212, 0.0046, 0.0353],
[-0.0137, 0.0203, -0.0120, ..., -0.0111, -0.0202, 0.0170]],
device='cuda:0', dtype=torch.float16, requires_grad=True)
p in reg_params = False

Even so, from my eyes, it looks that the two are identical. It still says that p is not in reg_params.

May you give me help here?

Thanks in advance,

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