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Evaluation

llm-jp-eval script(colab)

!git clone https://github.com/llm-jp/llm-jp-eval.git
!cd llm-jp-eval && pip install -e .
!cd llm-jp-eval && python scripts/preprocess_dataset.py --dataset-name all --output-dir ./dataset_dir
!cd llm-jp-eval && python scripts/evaluate_llm.py -cn config.yaml model.pretrained_model_name_or_path=jaeyong2/Qwen2.5-1.5B-Instruct-JaMagpie-Preview tokenizer.pretrained_model_name_or_path=jaeyong2/Qwen2.5-1.5B-Instruct-JaMagpie-Preview dataset_dir=./dataset_dir/1.4.1/evaluation/test
llm-jp-eval Qwen2.5-1.5B-Instruct google/gemma-2-2b-jpn-it finetuning-model
AVG 0.4343 0.4315 0.4540
CG 0.0600 0.0000 0.1500
EL 0.3952 0.3222 0.4106
FA 0.0690 0.0846 0.0000
HE 0.4400 0.4350 0.4300
MC 0.6800 0.6000 0.6400
MR 0.4700 0.4900 0.5800
MT 0.6137 0.7666 0.7915
NLI 0.5500 0.5260 0.4440
QA 0.2443 0.2813 0.3054
RC 0.8208 0.8097 0.7881

License

Qwen/Qwen2.5-1.5B-Instruct : https://choosealicense.com/licenses/apache-2.0/

Acknowledgement

This research is supported by TPU Research Cloud program.

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