Duplicate from llm-book/bert-base-japanese-v3-jsts
Browse filesCo-authored-by: Ryokan Ri <ryo0634@users.noreply.huggingface.co>
- .gitattributes +34 -0
- README.md +42 -0
- config.json +32 -0
- pytorch_model.bin +3 -0
- special_tokens_map.json +7 -0
- tokenizer_config.json +22 -0
- vocab.txt +0 -0
.gitattributes
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README.md
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---
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language:
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- ja
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license: apache-2.0
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library_name: transformers
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datasets:
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- llm-book/JGLUE
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---
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# bert-base-japanese-v3-jsts
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「[大規模言語モデル入門](https://www.amazon.co.jp/dp/4297136333)」の第5章で紹介している(意味類似度計算)のモデルです。
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[cl-tohoku/bert-base-japanese-v3](https://huggingface.co/cl-tohoku/bert-base-japanese-v3)を[JGLUE](https://huggingface.co/datasets/llm-book/JGLUE)のJSTSデータセットでファインチューニングして構築されています。
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## 関連リンク
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* [GitHubリポジトリ](https://github.com/ghmagazine/llm-book)
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* [Colabノートブック(訓練)](https://colab.research.google.com/github/ghmagazine/llm-book/blob/main/chapter5/5-4-sts-finetuning.ipynb)
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* [Colabノートブック(推論)](https://colab.research.google.com/github/ghmagazine/llm-book/blob/main/chapter5/5-4-sts-analysis.ipynb)
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* [データセット](https://huggingface.co/datasets/llm-book/JGLUE)
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* [大規模言語モデル入門(Amazon.co.jp)](https://www.amazon.co.jp/dp/4297136333/)
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* [大規模言語モデル入門(gihyo.jp)](https://gihyo.jp/book/2023/978-4-297-13633-8)
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## 使い方
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```python
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from transformers import pipeline
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text_sim_pipeline = pipeline(
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model="llm-book/bert-base-japanese-v3-jsts",
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function_to_apply="none",
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)
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text = "川べりでサーフボードを持った人たちがいます"
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sim_text = "サーファーたちが川べりに立っています"
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# textとsim_textの類似度を計算
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result = text_sim_pipeline({"text": text, "text_pair": sim_text})
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print(result["score"])
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# 3.5703558921813965
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```
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## ライセンス
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[Apache License 2.0](https://www.apache.org/licenses/LICENSE-2.0)
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config.json
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{
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"_name_or_path": "results_jsts/bert-base-japanese-v3/lr_2e-05_epochs_3_seed_42",
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"architectures": [
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"BertForSequenceClassification"
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],
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"attention_probs_dropout_prob": 0.1,
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"classifier_dropout": null,
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"hidden_act": "gelu",
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"hidden_dropout_prob": 0.1,
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"hidden_size": 768,
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"id2label": {
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"0": "LABEL_0"
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},
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"initializer_range": 0.02,
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"intermediate_size": 3072,
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"label2id": {
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"LABEL_0": 0
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},
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"layer_norm_eps": 1e-12,
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"max_position_embeddings": 512,
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"model_type": "bert",
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"num_attention_heads": 12,
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"num_hidden_layers": 12,
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"pad_token_id": 0,
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"position_embedding_type": "absolute",
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"problem_type": "regression",
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"torch_dtype": "float32",
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"transformers_version": "4.26.1",
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"type_vocab_size": 2,
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"use_cache": true,
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"vocab_size": 32768
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}
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pytorch_model.bin
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size 444901749
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special_tokens_map.json
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{
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"cls_token": "[CLS]",
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"mask_token": "[MASK]",
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"pad_token": "[PAD]",
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"sep_token": "[SEP]",
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"unk_token": "[UNK]"
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}
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tokenizer_config.json
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{
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"cls_token": "[CLS]",
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"do_lower_case": false,
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"do_subword_tokenize": true,
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"mask_token": "[MASK]",
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"mecab_kwargs": {
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"mecab_dic": "unidic_lite"
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},
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"model_max_length": 512,
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"name_or_path": "results_jsts/bert-base-japanese-v3/lr_2e-05_epochs_3_seed_42",
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"never_split": null,
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"pad_token": "[PAD]",
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"sep_token": "[SEP]",
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"subword_tokenizer_type": "wordpiece",
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"sudachi_kwargs": null,
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"tokenizer_class": "BertJapaneseTokenizer",
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"unk_token": "[UNK]",
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"word_tokenizer_type": "mecab"
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}
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vocab.txt
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