Source code for paddlespeech.kws.exps.mdtc.collate

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import time

import paddle


[docs]def collate_features(batch): # (key, feat, label) collate_start = time.time() keys = [] feats = [] labels = [] lengths = [] for sample in batch: keys.append(sample[0]) feats.append(sample[1]) labels.append(sample[2]) lengths.append(sample[1].shape[0]) max_length = max(lengths) for i in range(len(feats)): feats[i] = paddle.nn.functional.pad( feats[i], [0, max_length - feats[i].shape[0], 0, 0], data_format='NLC') return keys, paddle.stack(feats), paddle.to_tensor( labels), paddle.to_tensor(lengths)