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metadata
license: mit
task_categories:
  - question-answering
language:
  - zh
tags:
  - medical
  - tcm
  - traditional Chinese medicine
  - eval
  - benchmark
  - test

Description

This dataset can be used to evaluate the capabilities of large language models in traditional Chinese medicine and contains multiple-choice, multiple-answer, and true/false questions.

Changelog

Examples

multiple-answers questions(多选题)

[
  {
    "instruction": "便秘的预防调护应注意\nA.保持心情舒畅\nB.少吃辛辣刺激性食物\nC.适当摄入油脂\nD.积极治疗肛门直肠疾病\nE.按时登厕",
    "input": "",
    "output": "ABCDE"
  }
]

multiple-choice questions(单选题)

[
  {
    "instruction": "患者,男,50岁。眩晕欲仆,头摇而痛,项强肢颤,腰膝疫软,舌红苔薄白,脉弦有力。其病机是\nA.肝阳上亢\nB.肝肾阴虚\nC.肝阳化风\nD.阴虚风动\nE.肝血不足",
    "input": "",
    "output": "C"
  }
]

True/False questions(判断题)

[
  {
    "instruction": "秦医医和提出了“六气病源说”。",
    "input": "",
    "output": "正确"
  },
  {
    "instruction": "中风中经络邪盛时也可出现神志改变",
    "input": "",
    "output": "错误"
  }
]

Evaluation

multiple-choice questions(单选题) multiple-answers questions(多选题) True/False questions(判断题)
llama3:8b 21.94% 17.71% 46.56%
phi3:14b-instruct 26.93% 1.04% 38.93%
aya:8b 17.85% 1.04% 34.35%
mistral:7b-instruct 21.76% 2.08% 48.09%
qwen1.5-7b-chat 51.35% 13.54% 46.56%
qwen1.5-14b-chat 69.94% 78.12% 31.30%
huangdi-13b-chat 21.73% 45.83% 0.00%
canggong-14b-chat(SFT)
Ours
55.98% 4.17% 23.66%
canggong-14b-chat(DPO)
Ours
72.33% 2.08% 45.80%

Canggong-14b-chat is an LLM of traditional Chinese medicine still in training.

Citation

If you find this project useful in your research, please consider cite:

@misc{hwtcm2024,
    title={{hwtcm: Haiwei} a traditional Chinese medicine QA dataset for evaluating large language models},
    author={Haiwei Developer Team},
    howpublished = {\url{https://huggingface.co/datasets/Monor/hwtcm}},
    year={2024}
}