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license: cc-by-sa-4.0 |
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--- |
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# **Synatra-7B-v0.3-Translation๐ง** |
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![Synatra-7B-v0.3-Translation](./Synatra.png) |
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## Support Me |
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์๋ํธ๋ผ๋ ๊ฐ์ธ ํ๋ก์ ํธ๋ก, 1์ธ์ ์์์ผ๋ก ๊ฐ๋ฐ๋๊ณ ์์ต๋๋ค. ๋ชจ๋ธ์ด ๋ง์์ ๋์
จ๋ค๋ฉด ์ฝ๊ฐ์ ์ฐ๊ตฌ๋น ์ง์์ ์ด๋จ๊น์? |
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[<img src="https://cdn.buymeacoffee.com/buttons/default-orange.png" alt="Buy me a Coffee" width="217" height="50">](https://www.buymeacoffee.com/mwell) |
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Wanna be a sponser? (Please) Contact me on Telegram **AlzarTakkarsen** |
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# **License** |
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This model is strictly [*non-commercial*](https://creativecommons.org/licenses/by-sa/4.0/) (**cc-by-sa-4.0**) use, Under **5K MAU** |
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The "Model" is completely free (ie. base model, derivates, merges/mixes) to use for non-commercial purposes as long as the the included **cc-by-sa-4.0** license in any parent repository, and the non-commercial use statute remains, regardless of other models' licences. |
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If your service has over **5K MAU** contact me for license approval. |
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# **Model Details** |
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**Base Model** |
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[mistralai/Mistral-7B-Instruct-v0.1](https://huggingface.co/mistralai/Mistral-7B-Instruct-v0.1) |
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**Trained On** |
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A100 80GB * 1 |
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**Instruction format** |
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It follows [ChatML](https://github.com/openai/openai-python/blob/main/chatml.md) format and **Alpaca(No-Input)** format. |
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```python |
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<|im_start|>system |
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์ฃผ์ด์ง ๋ฌธ์ฅ์ ํ๊ตญ์ด๋ก ๋ฒ์ญํด๋ผ.<|im_end|> |
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<|im_start|>user |
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{instruction}<|im_end|> |
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<|im_start|>assistant |
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``` |
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## Ko-LLM-Leaderboard |
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On Benchmarking... |
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# **Implementation Code** |
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Since, chat_template already contains insturction format above. |
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You can use the code below. |
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```python |
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from transformers import AutoModelForCausalLM, AutoTokenizer |
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device = "cuda" # the device to load the model onto |
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model = AutoModelForCausalLM.from_pretrained("maywell/Synatra-7B-v0.3-Translation") |
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tokenizer = AutoTokenizer.from_pretrained("maywell/Synatra-7B-v0.3-Translation") |
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messages = [ |
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{"role": "user", "content": "๋ฐ๋๋๋ ์๋ ํ์์์ด์ผ?"}, |
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] |
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encodeds = tokenizer.apply_chat_template(messages, return_tensors="pt") |
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model_inputs = encodeds.to(device) |
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model.to(device) |
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generated_ids = model.generate(model_inputs, max_new_tokens=1000, do_sample=True) |
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decoded = tokenizer.batch_decode(generated_ids) |
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print(decoded[0]) |
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``` |