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""" |
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TODO: 繁体、简体、语种、 |
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""" |
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import os |
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import json |
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from collections import Counter |
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from utils.text_util import is_chinese, get_zh_count, get_digit_count |
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from zhon.hanzi import punctuation as zh_punc |
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CURRENT_DIR = os.path.dirname(os.path.abspath(__file__)) |
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zh_tokens = [line.strip() for line in open(os.path.join(CURRENT_DIR, "vocab.jd.txt.v2"), "r", encoding="utf-8") if |
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is_chinese(line.strip())] |
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def zh_iterator(): |
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for idx in range(ord(u'\u4e00'), ord(u'\u9fa5')): |
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yield (chr(idx)) |
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def get_coding_length(tokenizer, vocab, filter=None): |
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""" |
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计算编码长度。(有些中文汉字被解码成多个token) |
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""" |
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all_length = [] |
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for word in vocab: |
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if len(word) > 1: |
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continue |
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if filter is not None and filter(word): |
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continue |
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tokens = tokenizer.encode(word) |
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all_length.append(len(tokens)) |
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dist_length = Counter(all_length) |
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mean_length = round(sum(all_length) / len(all_length), 2) |
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return dist_length, mean_length |
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def has_zh_punc(text): |
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""" |
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是否包含中文标点 |
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""" |
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return any(ch in zh_punc for ch in text) |
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def get_space_count(text): |
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space_count = 0 |
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for char in text: |
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if len(char.strip()) == 0: |
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space_count += 1 |
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return space_count |
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def remove_special_char(): |
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""" |
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:return: |
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""" |
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pass |
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cache = {} |
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def iter_vocab(tokenizer, name="", from_cache=True): |
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if from_cache and name in cache: |
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return cache[name] |
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f_out = open(name + "_vocab.zh.jsonl", "w", encoding="utf-8") |
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zh_token_count = {"total": 0, "中文单字": 0, "中文多字": 0} |
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all_single_zh_tokens = set() |
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zh_symbol_count = 0 |
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for token_id in range(tokenizer.vocab_size): |
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decode_str = tokenizer.decode([token_id], skip_special_tokens=False) |
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token = tokenizer.convert_ids_to_tokens([token_id], skip_special_tokens=False)[0] |
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if token is None: |
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continue |
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if isinstance(token, bytes): |
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token = token.decode("utf-8", errors="ignore") |
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digit_count = get_digit_count(token) |
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zh_count = get_zh_count(decode_str) |
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space_count = get_space_count(decode_str) |
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f_out.write(json.dumps( |
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{"id": token_id, |
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"token": token, |
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"token_decode": decode_str, |
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"token_len": len(token), |
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"zh_count": zh_count, |
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"space_count": space_count, |
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"digit_count": digit_count, |
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"zh_symbol_count": zh_symbol_count, |
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}, |
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ensure_ascii=False) + "\n" |
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) |
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if zh_count >= 1: |
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zh_token_count["total"] += 1 |
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if zh_count > 1: |
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zh_token_count["中文多字"] += 1 |
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else: |
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zh_token_count["中文单字"] += 1 |
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all_single_zh_tokens.add(decode_str.strip().replace("#", "")) |
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dist_length, mean_length = get_coding_length(tokenizer, zh_tokens, filter=lambda k: not is_chinese(k)) |
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zh_token_count["中文单字-去重后"] = len(all_single_zh_tokens) |
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result = { |
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"name": name, |
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"impl": str(tokenizer.__class__), |
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"vocab_size": tokenizer.vocab_size, |
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"中文汉字数": zh_token_count, |
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"中文标点数": zh_symbol_count, |
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"中文汉字编码长度均值": mean_length, |
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"中文汉字编码长度分布": json.dumps(dist_length), |
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} |
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cache[name] = result |
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return result |
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if __name__ == "__main__": |
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from vocab.chatglm2_6b import tokenizer; name = "chatglm2_6b" |
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print(iter_vocab(tokenizer, name=name)) |
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