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luojianing 提交于 2023-07-21 15:16 . replace target=blank

Function Differences with torch.min

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torch.min

torch.min(input, dim, keepdim=False, *, out=None)

For more information, see torch.min.

mindspore.ops.min

mindspore.ops.min(input, axis=None, keepdims=False, *, initial=None, where=None)

For more information, see mindspore.ops.min.

Differences

PyTorch: Output tuple(min, index of min).

MindSpore: When the axis is None or the shape is empty in MindSpore, the keepdims and subsequent parameters are not effective, and the function is consistent with torch.min(input), and the index returned is fixed at 0. Otherwise, the output is a tuple (min, index of min), which is consistent with torch.min(input, dim, keepdim=False, *, out=None).

Categories Subcategories PyTorch MindSpore Difference
Parameters Parameter 1 input input Consistent
Parameter 2 dim axis Same function, different parameter names
Parameter 3 keepdim keepdims Same function, different parameter names
Parameter 4 - initial Not involved
Parameter 5 - where Not involved
Parameter 6 out - Not involved

Code Example

import mindspore as ms
import mindspore.ops as ops
import torch
import numpy as np

np_x = np.array([[-0.0081, -0.3283, -0.7814, -0.0934],
                 [1.4201, -0.3566, -0.3848, -0.1608],
                 [-0.0446, -0.1843, -1.1348, 0.5722],
                 [-0.6668, -0.2368, 0.2790, 0.0453]]).astype(np.float32)
# mindspore
input_x = ms.Tensor(np_x)
output, index = ops.min(input_x, axis=1)
print(output)
# [-0.7814 -0.3848 -1.1348 -0.6668]
print(index)
# [2 2 2 0]

# torch
input_x = torch.tensor(np_x)
output, index = torch.min(input_x, dim=1)
print(output)
# tensor([-0.7814, -0.3848, -1.1348, -0.6668])
print(index)
# tensor([2, 2, 2, 0])
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