Paddle 使用next来迭代数据集时,Tensor形状发生改变

plicqrtu  于 2021-11-30  发布在  Java
关注(0)|答案(2)|浏览(267)

PaddlePaddle版本:2.1.2
自定义的Dataset片段:
class AudioDataset(Dataset):
..............
defgetitem(self, idx):
p = self.files[idx]
filename = os.path.basename(p)
speaker = filename.split(sep='_', maxsplit=1)[0]
label = self.encoder.transform([speaker])[0]
mcep = np.load(p)
mcep = paddle.to_tensor(mcep, dtype='float32')
mcep = paddle.unsqueeze(mcep, 0)
print(paddle.to_tensor(speakers.index(speaker), dtype='int64'))
return mcep, paddle.to_tensor(speakers.index(speaker), dtype='int64'), paddle.to_tensor(label, dtype='float32')

测试:
def data_loader(datadir: str, batch_size=4, shuffle=True, num_workers=2):
dataset = AudioDataset(datadir)
loader = DataLoader(dataset, batch_size=batch_size, shuffle=shuffle, num_workers=num_workers)
return loader
dloader = data_loader(config.data_dir, batch_size=config.batch_size, num_workers=config.num_workers)
data_iter = iter(dloader)
x,index,label=next(data_iter)
print('Test')
print(index)

输出:
Tensor(shape=[1], dtype=int64, place=CPUPlace, stop_gradient=True,
[3])
Tensor(shape=[1], dtype=int64, place=CPUPlace, stop_gradient=True,
[2])
Test
Tensor(shape=[1, 1], dtype=int64, place=CPUPlace, stop_gradient=True,
3)
Tensor(shape=[1], dtype=int64, place=CPUPlace, stop_gradient=True,
[1])

68de4m5k

68de4m5k1#

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5fjcxozz

5fjcxozz2#

@abcdefghHIM 您好,to_tensor只有在做将scalar转换为Tensor时,会将其改变为shape为[1],请问是否存在这种情况呢?另外在dataset的def __getitem__函数中可以直接返回numpy,不用提前去做转换,dataloader迭代出的会自动转为Tensor

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