Upload model files.
Browse files- README.md +22 -0
- config.json +180 -0
- pytorch_model.bin +3 -0
- special_tokens_map.json +1 -0
- tokenizer_config.json +1 -0
- vocab.txt +0 -0
README.md
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---
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language:
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- zh
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thumbnail: https://ckip.iis.sinica.edu.tw/files/ckip_logo.png
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tags:
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- pytorch
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- token-classification
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- albert
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- zh
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license: gpl-3.0
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datasets:
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metrics:
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---
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# CKIP ALBERT Base Chinese β Named-Entity Recognition
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## Contributers
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* [Mu Yang](https://muyang.pro) at [CKIP](https://ckip.iis.sinica.edu.tw) (Author & Maintainer)
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## Attention
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Please Use `BertTokenizer` instead of `AutoTokenizer`!!!
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config.json
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{
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"architectures": [
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"AlbertForTokenClassification"
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],
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"attention_probs_dropout_prob": 0,
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"bos_token_id": 2,
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"classifier_dropout_prob": 0.1,
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"down_scale_factor": 1,
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"embedding_size": 128,
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"eos_token_id": 3,
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"gap_size": 0,
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"hidden_act": "relu",
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"hidden_dropout_prob": 0,
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"hidden_size": 768,
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"id2label": {
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"0": "O",
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"1": "B-CARDINAL",
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"2": "B-DATE",
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"3": "B-EVENT",
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"4": "B-FAC",
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"5": "B-GPE",
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"6": "B-LANGUAGE",
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"7": "B-LAW",
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"8": "B-LOC",
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"9": "B-MONEY",
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"10": "B-NORP",
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"11": "B-ORDINAL",
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"12": "B-ORG",
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"13": "B-PERCENT",
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"14": "B-PERSON",
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"15": "B-PRODUCT",
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"16": "B-QUANTITY",
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"17": "B-TIME",
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"18": "B-WORK_OF_ART",
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"19": "I-CARDINAL",
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"20": "I-DATE",
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"21": "I-EVENT",
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"22": "I-FAC",
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"23": "I-GPE",
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"24": "I-LANGUAGE",
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"25": "I-LAW",
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"26": "I-LOC",
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"27": "I-MONEY",
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"28": "I-NORP",
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"29": "I-ORDINAL",
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"30": "I-ORG",
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"31": "I-PERCENT",
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"32": "I-PERSON",
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"33": "I-PRODUCT",
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"34": "I-QUANTITY",
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"35": "I-TIME",
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"36": "I-WORK_OF_ART",
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"37": "E-CARDINAL",
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"38": "E-DATE",
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"39": "E-EVENT",
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"40": "E-FAC",
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"41": "E-GPE",
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"42": "E-LANGUAGE",
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"43": "E-LAW",
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"44": "E-LOC",
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"45": "E-MONEY",
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"46": "E-NORP",
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"47": "E-ORDINAL",
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"48": "E-ORG",
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"49": "E-PERCENT",
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"50": "E-PERSON",
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"51": "E-PRODUCT",
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"52": "E-QUANTITY",
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"53": "E-TIME",
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"54": "E-WORK_OF_ART",
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"55": "S-CARDINAL",
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"56": "S-DATE",
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"57": "S-EVENT",
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"58": "S-FAC",
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"59": "S-GPE",
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"60": "S-LANGUAGE",
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"61": "S-LAW",
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"62": "S-LOC",
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"63": "S-MONEY",
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"64": "S-NORP",
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"65": "S-ORDINAL",
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"66": "S-ORG",
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"67": "S-PERCENT",
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"68": "S-PERSON",
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"69": "S-PRODUCT",
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"70": "S-QUANTITY",
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"71": "S-TIME",
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"72": "S-WORK_OF_ART"
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},
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"initializer_range": 0.02,
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"inner_group_num": 1,
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"intermediate_size": 3072,
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"label2id": {
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"B-CARDINAL": 1,
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"B-DATE": 2,
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"B-EVENT": 3,
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"B-FAC": 4,
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"B-GPE": 5,
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"B-LANGUAGE": 6,
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"B-LAW": 7,
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"B-LOC": 8,
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"B-MONEY": 9,
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"B-NORP": 10,
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"B-ORDINAL": 11,
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"B-ORG": 12,
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"B-PERCENT": 13,
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"B-PERSON": 14,
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"B-PRODUCT": 15,
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"B-QUANTITY": 16,
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"B-TIME": 17,
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"B-WORK_OF_ART": 18,
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"E-CARDINAL": 37,
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"E-DATE": 38,
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"E-EVENT": 39,
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"E-FAC": 40,
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"E-GPE": 41,
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"E-LANGUAGE": 42,
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"E-LAW": 43,
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"E-LOC": 44,
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"E-MONEY": 45,
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"E-NORP": 46,
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"E-ORDINAL": 47,
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"E-ORG": 48,
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"E-PERCENT": 49,
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"E-PERSON": 50,
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"E-PRODUCT": 51,
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"E-QUANTITY": 52,
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"E-TIME": 53,
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"E-WORK_OF_ART": 54,
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"I-CARDINAL": 19,
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"I-DATE": 20,
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"I-EVENT": 21,
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"I-FAC": 22,
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"I-GPE": 23,
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"I-LANGUAGE": 24,
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"I-LAW": 25,
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"I-LOC": 26,
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"I-MONEY": 27,
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"I-NORP": 28,
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"I-ORDINAL": 29,
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"I-ORG": 30,
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"I-PERCENT": 31,
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"I-PERSON": 32,
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"I-PRODUCT": 33,
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"I-QUANTITY": 34,
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"I-TIME": 35,
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"I-WORK_OF_ART": 36,
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"O": 0,
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"S-CARDINAL": 55,
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"S-DATE": 56,
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"S-EVENT": 57,
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"S-FAC": 58,
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"S-GPE": 59,
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"S-LANGUAGE": 60,
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"S-LAW": 61,
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"S-LOC": 62,
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"S-MONEY": 63,
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"S-NORP": 64,
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"S-ORDINAL": 65,
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"S-ORG": 66,
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"S-PERCENT": 67,
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"S-PERSON": 68,
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"S-PRODUCT": 69,
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"S-QUANTITY": 70,
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"S-TIME": 71,
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"S-WORK_OF_ART": 72
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},
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"layer_norm_eps": 1e-12,
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"layers_to_keep": [],
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"max_position_embeddings": 512,
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"model_type": "albert",
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"net_structure_type": 0,
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"num_attention_heads": 12,
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"num_hidden_groups": 1,
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"num_hidden_layers": 12,
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"num_memory_blocks": 0,
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"pad_token_id": 0,
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"type_vocab_size": 2,
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"vocab_size": 21128
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}
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pytorch_model.bin
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version https://git-lfs.github.com/spec/v1
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oid sha256:fa85a21f1e8e9d70fec279db92eba51c4438491dba68092057f2583f9b173f50
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size 40069401
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special_tokens_map.json
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{"unk_token": "[UNK]", "sep_token": "[SEP]", "pad_token": "[PAD]", "cls_token": "[CLS]", "mask_token": "[MASK]"}
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tokenizer_config.json
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{"do_lower_case": false, "do_basic_tokenize": true, "never_split": null, "unk_token": "[UNK]", "sep_token": "[SEP]", "pad_token": "[PAD]", "cls_token": "[CLS]", "mask_token": "[MASK]", "tokenize_chinese_chars": true, "strip_accents": null, "model_max_length": 512, "name_or_path": "bert-base-chinese"}
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vocab.txt
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