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Toward expert-level medical question answering with large language models
by
Lachgar, Sami
, Natarajan, Vivek
, Gottweis, Juraj
, Dominowska, Ewa
, Wang, Amy
, Barral, Joelle K.
, Singhal, Karan
, Mansfield, Philip Andrew
, Corrado, Greg S.
, Dash, Dev
, Amin, Mohamed
, Mahdavi, S. Sara
, Wulczyn, Ellery
, Hou, Le
, Neal, Darlene
, Chen, Jonathan H.
, Tomašev, Nenad
, Shah, Nigam H.
, Prakash, Sushant
, Karthikesalingam, Alan
, Tu, Tao
, Wong, Renee
, Cole-Lewis, Heather
, Schaekermann, Mike
, Rashid, Qazi Mamunur
, Liu, Yun
, Agüera y Arcas, Blaise
, Semturs, Christopher
, Matias, Yossi
, Azizi, Shekoofeh
, Pfohl, Stephen R.
, Green, Bradley
, Webster, Dale R.
, Clark, Kevin
, Sayres, Rory
in
692/308
/ 692/700
/ Biomedical and Life Sciences
/ Biomedicine
/ Cancer Research
/ Datasets
/ Humans
/ Infectious Diseases
/ Large Language Models
/ Metabolic Diseases
/ Molecular Medicine
/ Neurosciences
/ Physicians
/ Pilot Projects
/ Questions
/ United States
2025
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Toward expert-level medical question answering with large language models
by
Lachgar, Sami
, Natarajan, Vivek
, Gottweis, Juraj
, Dominowska, Ewa
, Wang, Amy
, Barral, Joelle K.
, Singhal, Karan
, Mansfield, Philip Andrew
, Corrado, Greg S.
, Dash, Dev
, Amin, Mohamed
, Mahdavi, S. Sara
, Wulczyn, Ellery
, Hou, Le
, Neal, Darlene
, Chen, Jonathan H.
, Tomašev, Nenad
, Shah, Nigam H.
, Prakash, Sushant
, Karthikesalingam, Alan
, Tu, Tao
, Wong, Renee
, Cole-Lewis, Heather
, Schaekermann, Mike
, Rashid, Qazi Mamunur
, Liu, Yun
, Agüera y Arcas, Blaise
, Semturs, Christopher
, Matias, Yossi
, Azizi, Shekoofeh
, Pfohl, Stephen R.
, Green, Bradley
, Webster, Dale R.
, Clark, Kevin
, Sayres, Rory
in
692/308
/ 692/700
/ Biomedical and Life Sciences
/ Biomedicine
/ Cancer Research
/ Datasets
/ Humans
/ Infectious Diseases
/ Large Language Models
/ Metabolic Diseases
/ Molecular Medicine
/ Neurosciences
/ Physicians
/ Pilot Projects
/ Questions
/ United States
2025
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Toward expert-level medical question answering with large language models
by
Lachgar, Sami
, Natarajan, Vivek
, Gottweis, Juraj
, Dominowska, Ewa
, Wang, Amy
, Barral, Joelle K.
, Singhal, Karan
, Mansfield, Philip Andrew
, Corrado, Greg S.
, Dash, Dev
, Amin, Mohamed
, Mahdavi, S. Sara
, Wulczyn, Ellery
, Hou, Le
, Neal, Darlene
, Chen, Jonathan H.
, Tomašev, Nenad
, Shah, Nigam H.
, Prakash, Sushant
, Karthikesalingam, Alan
, Tu, Tao
, Wong, Renee
, Cole-Lewis, Heather
, Schaekermann, Mike
, Rashid, Qazi Mamunur
, Liu, Yun
, Agüera y Arcas, Blaise
, Semturs, Christopher
, Matias, Yossi
, Azizi, Shekoofeh
, Pfohl, Stephen R.
, Green, Bradley
, Webster, Dale R.
, Clark, Kevin
, Sayres, Rory
in
692/308
/ 692/700
/ Biomedical and Life Sciences
/ Biomedicine
/ Cancer Research
/ Datasets
/ Humans
/ Infectious Diseases
/ Large Language Models
/ Metabolic Diseases
/ Molecular Medicine
/ Neurosciences
/ Physicians
/ Pilot Projects
/ Questions
/ United States
2025
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Toward expert-level medical question answering with large language models
Journal Article
Toward expert-level medical question answering with large language models
2025
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Overview
Large language models (LLMs) have shown promise in medical question answering, with Med-PaLM being the first to exceed a ‘passing’ score in United States Medical Licensing Examination style questions. However, challenges remain in long-form medical question answering and handling real-world workflows. Here, we present Med-PaLM 2, which bridges these gaps with a combination of base LLM improvements, medical domain fine-tuning and new strategies for improving reasoning and grounding through ensemble refinement and chain of retrieval. Med-PaLM 2 scores up to 86.5% on the MedQA dataset, improving upon Med-PaLM by over 19%, and demonstrates dramatic performance increases across MedMCQA, PubMedQA and MMLU clinical topics datasets. Our detailed human evaluations framework shows that physicians prefer Med-PaLM 2 answers to those from other physicians on eight of nine clinical axes. Med-PaLM 2 also demonstrates significant improvements over its predecessor across all evaluation metrics, particularly on new adversarial datasets designed to probe LLM limitations (
P
< 0.001). In a pilot study using real-world medical questions, specialists preferred Med-PaLM 2 answers to generalist physician answers 65% of the time. While specialist answers were still preferred overall, both specialists and generalists rated Med-PaLM 2 to be as safe as physician answers, demonstrating its growing potential in real-world medical applications.
With an improved framework for model development and evaluation, a large language model is shown to provide answers to medical questions that are comparable or preferred with respect to those provided by human physicians.
Publisher
Nature Publishing Group US,Nature Publishing Group
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