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Model: snuh/hari-q3-8b
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---
license: apache-2.0
language:
- ko
- en
base_model:
- Qwen/Qwen3-8B-Base
tags:
- medical
- clinical
- QA
- benchmark
- healthcare
- korean
- reasoning
---
🧠 **Korean Medical LLM (QA-Finetuned) by Healthcare AI Research Institute of Seoul National University Hospital**
Welcome to the official repository of the **Korean Medical Large Language Model (LLM)** developed by the **Healthcare AI Research Institute (HARI)** at **Seoul National University Hospital (SNUH)**.
---
## 🚀 Model Overview
* **Model Name**: `snuh/hari-q3-8b`
* **Architecture**: Large Language Model (LLM)
* **Fine-tuning Objective**: Medical QA (QuestionAnswer) style generation
* **Primary Language**: English, Korean
* **Domain**: Clinical Medicine
* **Performance**: Achieves **76.78% accuracy** on the **Korean Medical Licensing Examination (KMLE)**
* **Key Applications**:
* Clinical decision support (QA-style)
* Medical education and self-assessment tools
* Automated medical reasoning and documentation aid
---
## 📊 Training Data & Benchmark
This model was fine-tuned using a curated corpus of Korean medical QA-style data derived from **publicly available, de-identified sources**. The training data includes clinical guidelines, academic publications, exam-style questions, and synthetic prompts reflecting real-world clinical reasoning.
* **Training Data Characteristics**:
- Focused on Korean-language questionanswering formats relevant to clinical settings.
- Includes guideline-derived questions, de-identified case descriptions, and physician-crafted synthetic queries.
- Designed to reflect realistic diagnostic, therapeutic, and decision-making scenarios.
* **Benchmark Evaluation**:
- **KorMedMCQA(5-shot)**
|Accuracy(%)|gpt-oss-20b|medgemma-27b|hari-q3-8b|
|------|---|---|---|
|Doctor|0.7333|0.7632|0.7678|
|Nurse|0.7722|0.8257|0.8360|
|Pharm|0.7684|0.8056|0.8441|
|Dentist|0.4316|0.6141|0.6165|
- **MedQA-USMLE(0-shot)**
||gpt-oss-20b|medgemma-27b|hari-q3-8b|
|------|---|---|---|
|Accuracy(%)|0.7777|0.8429|0.8154|
- **JAMA challenge(5-shot)**
||gpt-oss-20b|medgemma-27b|hari-q3-8b|
|------|---|---|---|
|Accuracy(%)|0.7777|0.8429|0.8154|
- **NEJM(5-shot)**
|Accuracy(%)|gpt-oss-20b|medgemma-27b|hari-q3-8b|
|------|---|---|---|
|General surgery|0.6809|0.6312|0.6099|
|Internal medicine|0.7063|0.6984|0.6587|
|Psychiatry|0.7467|0.6933|0.7533|
|Pediatrics|0.7374|0.7172|0.6869|
|Obgyn|0.5324|0.5683|0.5036|
- All evaluations were conducted on de-identified, non-clinical test sets, with no real patient data involved.
> ⚠️ These benchmarks are provided for research purposes only and do not imply clinical safety or efficacy.
---
## 🔐 Privacy & Ethical Compliance
We strictly adhere to ethical AI development and privacy protection:
* ✅ The model was trained exclusively on **publicly available and de-identified data**.
* 🔒 It does **not include any real patient data or personally identifiable information (PII)**.
* ⚖️ Designed for **safe, responsible, and research-oriented** use in healthcare AI.
> ⚠️ This model is intended for **research and educational purposes only** and should **not** be used to make clinical decisions.
---
## 🏥 About HARI Healthcare AI Research Institute
The **Healthcare AI Research Institute (HARI)** is a pioneering research group within **Seoul National University Hospital**, driving innovation in medical AI.
### 🌍 Vision & Mission
* **Vision**: Shaping a sustainable and healthy future through pioneering AI research.
* **Mission**:
* Develop clinically useful, trustworthy AI technologies.
* Foster cross-disciplinary collaboration in medicine and AI.
* Lead global healthcare AI commercialization and policy frameworks.
* Educate the next generation of AI-powered medical professionals.
---
## 🧪 Research Platforms & Infrastructure
* **Platforms**: SUPREME, SNUHUB, DeView, VitalDB, NSTRI Global Data Platform
* **Computing**: NVIDIA H100 / A100 GPUs, Quantum AI Infrastructure
* **Projects**:
* Clinical note summarization
* AI-powered diagnostics
* EHR automation
* Real-time monitoring via AI pipelines
---
## 🎓 AI Education Programs
* **Basic AI for Healthcare**: Designed for clinicians and students
* **Advanced AI Research**: Targeting senior researchers and specialists in clinical AI validation and deep learning
---
## 🤝 Collaborate with Us
We welcome collaboration with:
* AI research institutions and medical universities
* Healthcare startups and technology partners
* Policymakers shaping AI regulation in medicine
📧 **Contact**: [hhoon@snu.ac.kr](mailto:hhoon@snu.ac.kr)
🌐 **Website**: [Seoul National University Hospital](https://www.snuh.org)
---
## 🤗 Model Usage Example
```python
from transformers import AutoTokenizer, AutoModelForCausalLM
import torch
# Load tokenizer and model
model_name = "snuh/hari-q3-8b"
model = AutoModelForCausalLM.from_pretrained(
model_name,
torch_dtype="auto",
device_map="auto"
)
tokenizer = AutoTokenizer.from_pretrained(model_name)
prompt = '''
### Instruction:
당신은 임상 지식을 갖춘 유능하고 신뢰할 수 있는 한국어 기반 의료 어시스턴트입니다.
사용자의 질문에 대해 정확하고 신중한 임상 추론을 바탕으로 진단 가능성을 제시해 주세요.
반드시 환자의 연령, 증상, 검사 결과, 통증 부위 등 모든 단서를 종합적으로 고려하여 추론 과정과 진단명을 제시해야 합니다.
의학적으로 정확한 용어를 사용하되, 필요하다면 일반인이 이해하기 쉬운 용어도 병행해 설명해 주세요.
### Question:
60세 남성이 복통과 발열을 호소하며 내원하였습니다.
혈액 검사 결과 백혈구 수치가 상승했고, 우측 하복부 압통이 확인되었습니다.
가장 가능성이 높은 진단명은 무엇인가요?
'''.strip()
messages = [
{"role": "user", "content": prompt}
]
text = tokenizer.apply_chat_template(
messages,
tokenize=False,
add_generation_prompt=True,
enable_thinking=True
)
model_inputs = tokenizer([text], return_tensors="pt").to(model.device)
generated_ids = model.generate(
**model_inputs,
max_new_tokens=4096
)
generated_ids = [
output_ids[len(input_ids):] for input_ids, output_ids in zip(model_inputs.input_ids, generated_ids)
]
response = tokenizer.batch_decode(generated_ids, skip_special_tokens=True)[0]
print(response)
````
---
## 📄 License
**Apache 2.0 License** Free for research and commercial use with attribution.
---
## 📢 Citation
If you use this model in your work, please cite:
```
@misc{hari-q3,
title = {hari-q3-8b},
url = {https://huggingface.co/snuh/hari-q3-8b},
author = {Healthcare AI Research Institute(HARI) of Seoul National University Hospital(SNUH)},
month = {November},
year = {2025}
}
```
---
## 🚀 Together, we are shaping the future of AI-driven healthcare.
---
## Acknowlegments
This work was supported by Institute of Information & Communications Technology Planning & Evaluation (IITP) grant funded by the Korea government (MSIT) (RS-2025-02653113, High-Performance Research AI Computing Infrastructure Support at the 2 PFLOPS Scale)

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{%- if tools %}
{{- '<|im_start|>system\n' }}
{%- if messages[0].role == 'system' %}
{{- messages[0].content + '\n\n' }}
{%- endif %}
{{- "# Tools\n\nYou may call one or more functions to assist with the user query.\n\nYou are provided with function signatures within <tools></tools> XML tags:\n<tools>" }}
{%- for tool in tools %}
{{- "\n" }}
{{- tool | tojson }}
{%- endfor %}
{{- "\n</tools>\n\nFor each function call, return a json object with function name and arguments within <tool_call></tool_call> XML tags:\n<tool_call>\n{\"name\": <function-name>, \"arguments\": <args-json-object>}\n</tool_call><|im_end|>\n" }}
{%- else %}
{%- if messages[0].role == 'system' %}
{{- '<|im_start|>system\n' + messages[0].content + '<|im_end|>\n' }}
{%- endif %}
{%- endif %}
{%- set ns = namespace(multi_step_tool=true, last_query_index=messages|length - 1) %}
{%- for message in messages[::-1] %}
{%- set index = (messages|length - 1) - loop.index0 %}
{%- if ns.multi_step_tool and message.role == "user" and message.content is string and not(message.content.startswith('<tool_response>') and message.content.endswith('</tool_response>')) %}
{%- set ns.multi_step_tool = false %}
{%- set ns.last_query_index = index %}
{%- endif %}
{%- endfor %}
{%- for message in messages %}
{%- if message.content is string %}
{%- set content = message.content %}
{%- else %}
{%- set content = '' %}
{%- endif %}
{%- if (message.role == "user") or (message.role == "system" and not loop.first) %}
{{- '<|im_start|>' + message.role + '\n' + content + '<|im_end|>' + '\n' }}
{%- elif message.role == "assistant" %}
{%- set reasoning_content = '' %}
{%- if message.reasoning_content is string %}
{%- set reasoning_content = message.reasoning_content %}
{%- else %}
{%- if '</think>' in content %}
{%- set reasoning_content = content.split('</think>')[0].rstrip('\n').split('<think>')[-1].lstrip('\n') %}
{%- set content = content.split('</think>')[-1].lstrip('\n') %}
{%- endif %}
{%- endif %}
{%- if loop.index0 > ns.last_query_index %}
{%- if loop.last or (not loop.last and reasoning_content) %}
{{- '<|im_start|>' + message.role + '\n<think>\n' + reasoning_content.strip('\n') + '\n</think>\n\n' + content.lstrip('\n') }}
{%- else %}
{{- '<|im_start|>' + message.role + '\n' + content }}
{%- endif %}
{%- else %}
{{- '<|im_start|>' + message.role + '\n' + content }}
{%- endif %}
{%- if message.tool_calls %}
{%- for tool_call in message.tool_calls %}
{%- if (loop.first and content) or (not loop.first) %}
{{- '\n' }}
{%- endif %}
{%- if tool_call.function %}
{%- set tool_call = tool_call.function %}
{%- endif %}
{{- '<tool_call>\n{"name": "' }}
{{- tool_call.name }}
{{- '", "arguments": ' }}
{%- if tool_call.arguments is string %}
{{- tool_call.arguments }}
{%- else %}
{{- tool_call.arguments | tojson }}
{%- endif %}
{{- '}\n</tool_call>' }}
{%- endfor %}
{%- endif %}
{{- '<|im_end|>\n' }}
{%- elif message.role == "tool" %}
{%- if loop.first or (messages[loop.index0 - 1].role != "tool") %}
{{- '<|im_start|>user' }}
{%- endif %}
{{- '\n<tool_response>\n' }}
{{- content }}
{{- '\n</tool_response>' }}
{%- if loop.last or (messages[loop.index0 + 1].role != "tool") %}
{{- '<|im_end|>\n' }}
{%- endif %}
{%- endif %}
{%- endfor %}
{%- if add_generation_prompt %}
{{- '<|im_start|>assistant\n' }}
{%- if enable_thinking is defined and enable_thinking is false %}
{{- '<think>\n\n</think>\n\n' }}
{%- endif %}
{%- endif %}

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"use_cache": true,
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"vocab_size": 151936
}

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