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Apollo-2B - GGUF

Name Quant method Size
Apollo-2B.Q2_K.gguf Q2_K 1.08GB
Apollo-2B.IQ3_XS.gguf IQ3_XS 1.16GB
Apollo-2B.IQ3_S.gguf IQ3_S 1.2GB
Apollo-2B.Q3_K_S.gguf Q3_K_S 1.2GB
Apollo-2B.IQ3_M.gguf IQ3_M 1.22GB
Apollo-2B.Q3_K.gguf Q3_K 1.29GB
Apollo-2B.Q3_K_M.gguf Q3_K_M 1.29GB
Apollo-2B.Q3_K_L.gguf Q3_K_L 1.36GB
Apollo-2B.IQ4_XS.gguf IQ4_XS 1.4GB
Apollo-2B.Q4_0.gguf Q4_0 1.44GB
Apollo-2B.IQ4_NL.gguf IQ4_NL 1.45GB
Apollo-2B.Q4_K_S.gguf Q4_K_S 1.45GB
Apollo-2B.Q4_K.gguf Q4_K 1.52GB
Apollo-2B.Q4_K_M.gguf Q4_K_M 1.52GB
Apollo-2B.Q4_1.gguf Q4_1 1.56GB
Apollo-2B.Q5_0.gguf Q5_0 1.68GB
Apollo-2B.Q5_K_S.gguf Q5_K_S 1.68GB
Apollo-2B.Q5_K.gguf Q5_K 1.71GB
Apollo-2B.Q5_K_M.gguf Q5_K_M 1.71GB
Apollo-2B.Q5_1.gguf Q5_1 1.79GB
Apollo-2B.Q6_K.gguf Q6_K 1.92GB
Apollo-2B.Q8_0.gguf Q8_0 2.49GB

Original model description:

license: apache-2.0

Multilingual Medicine: Model, Dataset, Benchmark, Code

Covering English, Chinese, French, Hindi, Spanish, Hindi, Arabic So far

πŸ‘¨πŸ»β€πŸ’»Github β€’πŸ“ƒ Paper β€’ 🌐 Demo β€’ πŸ€— ApolloCorpus β€’ πŸ€— XMedBench
δΈ­ζ–‡ | English

Apollo

🌈 Update

  • [2024.03.07] Paper released.
  • [2024.02.12] ApolloCorpus and XMedBench is publishedοΌπŸŽ‰
  • [2024.01.23] Apollo repo is publishedοΌπŸŽ‰

Results

πŸ€—Apollo-0.5B β€’ πŸ€— Apollo-1.8B β€’ πŸ€— Apollo-2B β€’ πŸ€— Apollo-6B β€’ πŸ€— Apollo-7B

πŸ€— Apollo-0.5B-GGUF β€’ πŸ€— Apollo-2B-GGUF β€’ πŸ€— Apollo-6B-GGUF β€’ πŸ€— Apollo-7B-GGUF

Apollo

Usage Format

User:{query}\nAssistant:{response}<|endoftext|>

Dataset & Evaluation

  • Dataset πŸ€— ApolloCorpus

    Click to expand

    Apollo

    • Zip File
    • Data category
      • Pretrain:
        • data item:
          • json_name: {data_source}{language}{data_type}.json
          • data_type: medicalBook, medicalGuideline, medicalPaper, medicalWeb(from online forum), medicalWiki
          • language: en(English), zh(chinese), es(spanish), fr(french), hi(Hindi)
          • data_type: qa(generated qa from text)
          • data_type==text: list of string
            [
              "string1",
              "string2",
              ...
            ]
            
          • data_type==qa: list of qa pairs(list of string)
            [
              [
                "q1",
                "a1",
                "q2",
                "a2",
                ...
              ],
              ...
            ]
            
      • SFT:
        • json_name: {data_source}_{language}.json
        • data_type: code, general, math, medicalExam, medicalPatient
        • data item: list of qa pairs(list of string)
            [
              [
                "q1",
                "a1",
                "q2",
                "a2",
                ...
              ],
              ...
            ]
          
  • Evaluation πŸ€— XMedBench

    Click to expand
    • EN:

      • MedQA-USMLE
      • MedMCQA
      • PubMedQA: Because the results fluctuated too much, they were not used in the paper.
      • MMLU-Medical
        • Clinical knowledge, Medical genetics, Anatomy, Professional medicine, College biology, College medicine
    • ZH:

      • MedQA-MCMLE
      • CMB-single: Not used in the paper
        • Randomly sample 2,000 multiple-choice questions with single answer.
      • CMMLU-Medical
        • Anatomy, Clinical_knowledge, College_medicine, Genetics, Nutrition, Traditional_chinese_medicine, Virology
      • CExam: Not used in the paper
        • Randomly sample 2,000 multiple-choice questions
    • ES: Head_qa

    • FR: Frenchmedmcqa

    • HI: MMLU_HI

      • Clinical knowledge, Medical genetics, Anatomy, Professional medicine, College biology, College medicine
    • AR: MMLU_Ara

      • Clinical knowledge, Medical genetics, Anatomy, Professional medicine, College biology, College medicine

Results reproduction

Click to expand

Waiting for Update

Citation

Please use the following citation if you intend to use our dataset for training or evaluation:

@misc{wang2024apollo,
   title={Apollo: Lightweight Multilingual Medical LLMs towards Democratizing Medical AI to 6B People},
   author={Xidong Wang and Nuo Chen and Junyin Chen and Yan Hu and Yidong Wang and Xiangbo Wu and Anningzhe Gao and Xiang Wan and Haizhou Li and Benyou Wang},
   year={2024},
   eprint={2403.03640},
   archivePrefix={arXiv},
   primaryClass={cs.CL}
}
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