google-bert_bert-base-chinese
google-bert · View on Hugging Face ↗
Model card
The complete upstream card, rendered from this payload's README.md — the same hash-verified bytes the torrent distributes. Images and off-site links are removed; the original card on Hugging Face carries them.
language: zh license: apache-2.0
Bert-base-chinese
Table of Contents
- Model Details
- Uses
- Risks, Limitations and Biases
- Training
- Evaluation
- How to Get Started With the Model
Model Details
Model Description
This model has been pre-trained for Chinese, training and random input masking has been applied independently to word pieces (as in the original BERT paper).
- Developed by: Google
- Model Type: Fill-Mask
- Language(s): Chinese
- License: Apache 2.0
- Parent Model: See the BERT base uncased model for more information about the BERT base model.
Model Sources
- GitHub repo: https://github.com/google-research/bert/blob/master/multilingual.md
- Paper: BERT
Uses
Direct Use
This model can be used for masked language modeling
Risks, Limitations and Biases
CONTENT WARNING: Readers should be aware this section contains content that is disturbing, offensive, and can propagate historical and current stereotypes.
Significant research has explored bias and fairness issues with language models (see, e.g., Sheng et al. (2021) and Bender et al. (2021)).
Training
Training Procedure
- type_vocab_size: 2
- vocab_size: 21128
- num_hidden_layers: 12
Training Data
[More Information Needed]
Evaluation
Results
[More Information Needed]
How to Get Started With the Model
from transformers import AutoTokenizer, AutoModelForMaskedLM
tokenizer = AutoTokenizer.from_pretrained("bert-base-chinese")
model = AutoModelForMaskedLM.from_pretrained("bert-base-chinese")
Magnet link
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magnet:?xt=urn:btih:0ca668dd5a25f14845c70a4a92235aa2825b79df&dn=google-bert_bert-base-chineseOpen magnet in torrent client · infohash 0ca668dd5a25f14845c70a4a92235aa2825b79df
Files & hashes
| Path | Size | sha1 | sha256 |
|---|---|---|---|
| README.md | 1.9 KB (1,923 B) | b1219061e44d61af7d210d1bfa6928d03ba68453 | 80efb5c88f6c09c0f4b2f91380852a374f023e195954f21ff7221928487ce454 |
| config.json | 624 B (624 B) | a521dc2845bdddbe822864290c6b928396fc5ee8 | 88af762cfb15fa9ce183c84dcbfdc9d635196ba635dfe81f265fdd21d67f4c4c |
| model.safetensors | 392.5 MB (411,553,788 B) | fda7d82cb1c75e552915a04eca46628a3346f8c0 | 3404a1ffd8da507042e8161013ba2a4fc49858b4e3f8fbf5ce5724f94883aec3 |
| pytorch_model.bin | 392.5 MB (411,577,189 B) | 3824529a6c615ae30ac54ecf64bdded4ca01a51d | 8a693db616eaf647ed2bfe531e1fa446637358fc108a8bf04e8d4db17e837ee9 |
| tokenizer.json | 262.6 KB (268,943 B) | dd9401af0a4713df0e75066ae78d5bf6fa6c7116 | 55c5edcfb8936895e019b2d8f97dcb547734f25b29f95009155f4c8c15649aae |
| tokenizer_config.json | 49 B (49 B) | 2ba5de7675473164e07f3b3531748c9a6f113a2c | 0f6d13e6f4da6f9e24f22ada6bc3be571123d858d7c0c05a8a7cd55a9c23c2e8 |
| vocab.txt | 107.0 KB (109,540 B) | ca4f9781030019ab9b253c6dcb8c7878b6dc87a5 | 45bbac6b341c319adc98a532532882e91a9cefc0329aa57bac9ae761c27b291c |
Cite this release
- Canonical URL
- https://aiseedbank.org/models/google-bert_bert-base-chinese/
- Slug
- google-bert_bert-base-chinese
- Infohash
- 0ca668dd5a25f14845c70a4a92235aa2825b79df
- License
- apache-2.0
- Signing key fingerprint
- 85a3b32c3712427b
Every file carries a locally computed sha256 — verify a download against the signed sums: google-bert_bert-base-chinese.SHA256SUMS (+ minisign signature).
Provenance
| Upstream repository | google-bert/bert-base-chinese |
|---|---|
| Revision (pinned) | 8f23c25b06e129b6c986331a13d8d025a92cf0ea |
| Fetched at | 2026-09-03T23:04:56Z |
| License at fetch | apache-2.0 |
| Snapshot tool | huggingface · seedbank 0.1.0 |
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✓ verified · rehash-vs-hf-metadata at 2026-09-03T23:05:06Z
apache-2.0785.4 MB (823,512,056 bytes)transformerspytorchjaxsafetensorsbertfill-maskendpoints_compatible2 languages (tf, zh)paper: 1810.04805