模型:
TheBloke/Vigogne-Instruct-13B-GPTQ
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These files are GPTQ 4bit model files for Vigogne Instruct 13B - A French instruction-following LLaMa model .
It is the result of merging the LoRA then quantising to 4bit using GPTQ-for-LLaMa .
Open the text-generation-webui UI as normal.
Compatible file - Vigogne-Instruct-13B-GPTQ-4bit-128g.no-act-order.safetensors
In the main branch you will find Vigogne-Instruct-13B-GPTQ-4bit-128g.no-act-order.safetensors
This will work with all versions of GPTQ-for-LLaMa. It has maximum compatibility.
It was created with groupsize 128 to ensure higher quality inference, without --act-order parameter to maximise compatibility.
python llama.py /workspace/process/TheBloke_Vigogne-Instruct-13B-GGML/HF wikitext2 --wbits 4 --true-sequential --groupsize 128 --save_safetensors /workspace/process/TheBloke_Vigogne-Instruct-13B-GGML/gptq/Vigogne-Instruct-13B-GPTQ-4bit-128g.no-act-order.safetensors
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Thank you to all my generous patrons and donaters!
Vigogne-instruct-13b is a LLaMA-13B model fine-tuned to follow the ?? French instructions.
For more information, please visit the Github repo: https://github.com/bofenghuang/vigogne
Usage and License Notices : Same as Stanford Alpaca , Vigogne is intended and licensed for research use only. The dataset is CC BY NC 4.0 (allowing only non-commercial use) and models trained using the dataset should not be used outside of research purposes.
This repo only contains the low-rank adapter. In order to access the complete model, you also need to load the base LLM model and tokenizer.
from peft import PeftModel from transformers import LlamaForCausalLM, LlamaTokenizer base_model_name_or_path = "name/or/path/to/hf/llama/13b/model" lora_model_name_or_path = "bofenghuang/vigogne-instruct-13b" tokenizer = LlamaTokenizer.from_pretrained(base_model_name_or_path, padding_side="right", use_fast=False) model = LlamaForCausalLM.from_pretrained( base_model_name_or_path, load_in_8bit=True, torch_dtype=torch.float16, device_map="auto", ) model = PeftModel.from_pretrained(model, lora_model_name_or_path)
You can infer this model by using the following Google Colab Notebook.
Vigogne is still under development, and there are many limitations that have to be addressed. Please note that it is possible that the model generates harmful or biased content, incorrect information or generally unhelpful answers.