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		Build error
		
	| import torch | |
| from torch.utils.data import DataLoader | |
| from multiprocessing import Pool | |
| import commons | |
| import utils | |
| from data_utils import TextAudioSpeakerLoader, TextAudioSpeakerCollate | |
| from tqdm import tqdm | |
| import warnings | |
| from text import cleaned_text_to_sequence, get_bert | |
| config_path = 'configs/config.json' | |
| hps = utils.get_hparams_from_file(config_path) | |
| def process_line(line): | |
| _id, spk, language_str, text, phones, tone, word2ph = line.strip().split("|") | |
| phone = phones.split(" ") | |
| tone = [int(i) for i in tone.split(" ")] | |
| word2ph = [int(i) for i in word2ph.split(" ")] | |
| w2pho = [i for i in word2ph] | |
| word2ph = [i for i in word2ph] | |
| phone, tone, language = cleaned_text_to_sequence(phone, tone, language_str) | |
| if hps.data.add_blank: | |
| phone = commons.intersperse(phone, 0) | |
| tone = commons.intersperse(tone, 0) | |
| language = commons.intersperse(language, 0) | |
| for i in range(len(word2ph)): | |
| word2ph[i] = word2ph[i] * 2 | |
| word2ph[0] += 1 | |
| wav_path = f'{_id}' | |
| bert_path = wav_path.replace(".wav", ".bert.pt") | |
| try: | |
| bert = torch.load(bert_path) | |
| assert bert.shape[-1] == len(phone) | |
| except: | |
| bert = get_bert(text, word2ph, language_str) | |
| assert bert.shape[-1] == len(phone) | |
| torch.save(bert, bert_path) | |
| if __name__ == '__main__': | |
| lines = [] | |
| with open(hps.data.training_files, encoding='utf-8' ) as f: | |
| lines.extend(f.readlines()) | |
| # with open(hps.data.validation_files, encoding='utf-8' ) as f: | |
| # lines.extend(f.readlines()) | |
| with Pool(processes=2) as pool: #A100 40GB suitable config,if coom,please decrease the processess number. | |
| for _ in tqdm(pool.imap_unordered(process_line, lines)): | |
| pass | |
