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import torch
import torch.nn as nn
from . import SparseTensor
__all__ = [
'SparseLinear'
]
class SparseLinear(nn.Linear):
def __init__(self, in_features, out_features, bias=True):
super(SparseLinear, self).__init__(in_features, out_features, bias)
def forward(self, input: SparseTensor) -> SparseTensor:
return input.replace(super().forward(input.feats))