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import pickle |
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import os |
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import re |
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from g2p_en import G2p |
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from string import punctuation |
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from text import symbols |
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current_file_path = os.path.dirname(__file__) |
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CMU_DICT_PATH = os.path.join(current_file_path, 'cmudict.rep') |
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CACHE_PATH = os.path.join(current_file_path, 'cmudict_cache.pickle') |
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_g2p = G2p() |
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arpa = {'AH0', 'S', 'AH1', 'EY2', 'AE2', 'EH0', 'OW2', 'UH0', 'NG', 'B', 'G', 'AY0', 'M', 'AA0', 'F', 'AO0', 'ER2', 'UH1', 'IY1', 'AH2', 'DH', 'IY0', 'EY1', 'IH0', 'K', 'N', 'W', 'IY2', 'T', 'AA1', 'ER1', 'EH2', 'OY0', 'UH2', 'UW1', 'Z', 'AW2', 'AW1', 'V', 'UW2', 'AA2', 'ER', 'AW0', 'UW0', 'R', 'OW1', 'EH1', 'ZH', 'AE0', 'IH2', 'IH', 'Y', 'JH', 'P', 'AY1', 'EY0', 'OY2', 'TH', 'HH', 'D', 'ER0', 'CH', 'AO1', 'AE1', 'AO2', 'OY1', 'AY2', 'IH1', 'OW0', 'L', 'SH'} |
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def post_replace_ph(ph): |
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rep_map = { |
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':': ',', |
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';': ',', |
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',': ',', |
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'。': '.', |
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'!': '!', |
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'?': '?', |
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'\n': '.', |
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"·": ",", |
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'、': ",", |
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'...': '…', |
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'v': "V" |
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} |
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if ph in rep_map.keys(): |
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ph = rep_map[ph] |
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if ph in symbols: |
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return ph |
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if ph not in symbols: |
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ph = 'UNK' |
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return ph |
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def read_dict(): |
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g2p_dict = {} |
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start_line = 49 |
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with open(CMU_DICT_PATH) as f: |
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line = f.readline() |
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line_index = 1 |
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while line: |
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if line_index >= start_line: |
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line = line.strip() |
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word_split = line.split(' ') |
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word = word_split[0] |
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syllable_split = word_split[1].split(' - ') |
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g2p_dict[word] = [] |
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for syllable in syllable_split: |
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phone_split = syllable.split(' ') |
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g2p_dict[word].append(phone_split) |
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line_index = line_index + 1 |
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line = f.readline() |
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return g2p_dict |
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def cache_dict(g2p_dict, file_path): |
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with open(file_path, 'wb') as pickle_file: |
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pickle.dump(g2p_dict, pickle_file) |
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def get_dict(): |
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if os.path.exists(CACHE_PATH): |
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with open(CACHE_PATH, 'rb') as pickle_file: |
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g2p_dict = pickle.load(pickle_file) |
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else: |
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g2p_dict = read_dict() |
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cache_dict(g2p_dict, CACHE_PATH) |
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return g2p_dict |
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eng_dict = get_dict() |
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def refine_ph(phn): |
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tone = 0 |
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if re.search(r'\d$', phn): |
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tone = int(phn[-1]) + 1 |
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phn = phn[:-1] |
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return phn.lower(), tone |
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def refine_syllables(syllables): |
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tones = [] |
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phonemes = [] |
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for phn_list in syllables: |
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for i in range(len(phn_list)): |
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phn = phn_list[i] |
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phn, tone = refine_ph(phn) |
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phonemes.append(phn) |
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tones.append(tone) |
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return phonemes, tones |
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def text_normalize(text): |
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return text |
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def g2p(text): |
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phones = [] |
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tones = [] |
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words = re.split(r"([,;.\-\?\!\s+])", text) |
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for w in words: |
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if w.upper() in eng_dict: |
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phns, tns = refine_syllables(eng_dict[w.upper()]) |
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phones += phns |
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tones += tns |
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else: |
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phone_list = list(filter(lambda p: p != " ", _g2p(w))) |
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for ph in phone_list: |
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if ph in arpa: |
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ph, tn = refine_ph(ph) |
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phones.append(ph) |
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tones.append(tn) |
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else: |
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phones.append(ph) |
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tones.append(0) |
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word2ph = [1 for i in phones] |
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phones = [post_replace_ph(i) for i in phones] |
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return phones, tones, word2ph |
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if __name__ == "__main__": |
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print(g2p("In this paper, we propose 1 DSPGAN, a GAN-based universal vocoder.")) |
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