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MedChatZH: a Better Medical Adviser Learns from Better Instructions

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arxiv 2309.01114 v1 pith:RXOK5PP4 submitted 2023-09-03 cs.CL cs.AI

classification cs.CLcs.AI
keywords medicalchinesetraditionaldatasetdialoguemedchatzhmodelbetter
verification ladder T0 review T1 audit T2 compute T3 formal
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Generative large language models (LLMs) have shown great success in various applications, including question-answering (QA) and dialogue systems. However, in specialized domains like traditional Chinese medical QA, these models may perform unsatisfactorily without fine-tuning on domain-specific datasets. To address this, we introduce MedChatZH, a dialogue model designed specifically for traditional Chinese medical QA. Our model is pre-trained on Chinese traditional medical books and fine-tuned with a carefully curated medical instruction dataset. It outperforms several solid baselines on a real-world medical dialogue dataset. We release our model, code, and dataset on https://github.com/tyang816/MedChatZH to facilitate further research in the domain of traditional Chinese medicine and LLMs.

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  1. DoPI: Doctor-like Proactive Interrogation LLM for Traditional Chinese Medicine

    cs.AI 2025-07 reject novelty 5.0 of 10

    DoPI pairs a knowledge-graph-guided questioning model with a TCM expert model and claims 84.68% diagnostic accuracy, but the benchmark is built from the same symptom-disease rules that drive the system.

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