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      Precisión de ChatGPT en el diagnóstico de entidades clínicas en el ámbito de la medicina interna Translated title: Accuracy of ChatGPT for the diagnosis of clinical entities in the field of internal medicine

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          Diagnostic Accuracy of Differential-Diagnosis Lists Generated by Generative Pretrained Transformer 3 Chatbot for Clinical Vignettes with Common Chief Complaints: A Pilot Study

          The diagnostic accuracy of differential diagnoses generated by artificial intelligence (AI) chatbots, including the generative pretrained transformer 3 (GPT-3) chatbot (ChatGPT-3) is unknown. This study evaluated the accuracy of differential-diagnosis lists generated by ChatGPT-3 for clinical vignettes with common chief complaints. General internal medicine physicians created clinical cases, correct diagnoses, and five differential diagnoses for ten common chief complaints. The rate of correct diagnosis by ChatGPT-3 within the ten differential-diagnosis lists was 28/30 (93.3%). The rate of correct diagnosis by physicians was still superior to that by ChatGPT-3 within the five differential-diagnosis lists (98.3% vs. 83.3%, p = 0.03). The rate of correct diagnosis by physicians was also superior to that by ChatGPT-3 in the top diagnosis (53.3% vs. 93.3%, p < 0.001). The rate of consistent differential diagnoses among physicians within the ten differential-diagnosis lists generated by ChatGPT-3 was 62/88 (70.5%). In summary, this study demonstrates the high diagnostic accuracy of differential-diagnosis lists generated by ChatGPT-3 for clinical cases with common chief complaints. This suggests that AI chatbots such as ChatGPT-3 can generate a well-differentiated diagnosis list for common chief complaints. However, the order of these lists can be improved in the future.
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            Accuracy of a Generative Artificial Intelligence Model in a Complex Diagnostic Challenge

            This study assesses the diagnostic accuracy of the Generative Pre-trained Transformer 4 (GPT-4) artificial intelligence (AI) model in a series of challenging cases.
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              Utility of ChatGPT in Clinical Practice

              ChatGPT is receiving increasing attention and has a variety of application scenarios in clinical practice. In clinical decision support, ChatGPT has been used to generate accurate differential diagnosis lists, support clinical decision-making, optimize clinical decision support, and provide insights for cancer screening decisions. In addition, ChatGPT has been used for intelligent question-answering to provide reliable information about diseases and medical queries. In terms of medical documentation, ChatGPT has proven effective in generating patient clinical letters, radiology reports, medical notes, and discharge summaries, improving efficiency and accuracy for health care providers. Future research directions include real-time monitoring and predictive analytics, precision medicine and personalized treatment, the role of ChatGPT in telemedicine and remote health care, and integration with existing health care systems. Overall, ChatGPT is a valuable tool that complements the expertise of health care providers and improves clinical decision-making and patient care. However, ChatGPT is a double-edged sword. We need to carefully consider and study the benefits and potential dangers of ChatGPT. In this viewpoint, we discuss recent advances in ChatGPT research in clinical practice and suggest possible risks and challenges of using ChatGPT in clinical practice. It will help guide and support future artificial intelligence research similar to ChatGPT in health.
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                Author and article information

                Journal
                gmm
                Gaceta médica de México
                Gac. Méd. Méx
                Academia Nacional de Medicina de México A.C. (Ciudad de México, Ciudad de México, Mexico )
                0016-3813
                2696-1288
                October 2023
                : 159
                : 5
                : 452-455
                Affiliations
                [3] Guadalajara orgnameUniversidad de Guadalajara orgdiv1Centro Universitario de Ciencias de la Salud orgdiv2Coordinador de Posgrado Mexico
                [2] Guadalajara Jalisco orgnameHospital Civil de Guadalajara "Dr. Juan I. Menchaca" orgdiv1Servicio de Medicina Interna México
                [1] Guadalajara orgnameUniversidad de Guadalajara orgdiv1Centro Universitario en Ciencias de la Salud Mexico
                Article
                S0016-38132023000500452 S0016-3813(23)15900500452
                10.24875/gmm.23000297
                fe08afeb-02b5-4777-a337-dc9fc027d672

                This work is licensed under a Creative Commons Attribution-NonCommercial-NoDerivatives 4.0 International License.

                History
                : 18 July 2023
                : 06 September 2023
                Page count
                Figures: 0, Tables: 0, Equations: 0, References: 11, Pages: 4
                Product

                SciELO Mexico

                Categories
                Comunicación breve

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