Can Large Language Models (LLMs) Predict the Appropriate Treatment of Acute Hip Fractures in Older Adults? Comparing Appropriate Use Criteria With Recommendations From ChatGPT.

Katrina S Nietsch, Nancy Shrestha, Laura C Mazudie Ndjonko, Wasil Ahmed, Mateo Restrepo Mejia, Bashar Zaidat, Renee Ren, Akiro H Duey, Samuel Q Li, Jun S Kim, Krystin A Hidden, Samuel K Cho
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Abstract

Background: Acute hip fractures are a public health problem affecting primarily older adults. Chat Generative Pretrained Transformer may be useful in providing appropriate clinical recommendations for beneficial treatment.

Objective: To evaluate the accuracy of Chat Generative Pretrained Transformer (ChatGPT)-4.0 by comparing its appropriateness scores for acute hip fractures with the American Academy of Orthopaedic Surgeons (AAOS) Appropriate Use Criteria given 30 patient scenarios. "Appropriateness" indicates the unexpected health benefits of treatment exceed the expected negative consequences by a wide margin.

Methods: Using the AAOS Appropriate Use Criteria as the benchmark, numerical scores from 1 to 9 assessed appropriateness. For each patient scenario, ChatGPT-4.0 was asked to assign an appropriate score for six treatments to manage acute hip fractures.

Results: Thirty patient scenarios were evaluated for 180 paired scores. Comparing ChatGPT-4.0 with AAOS scores, there was a positive correlation for multiple cannulated screw fixation, total hip arthroplasty, hemiarthroplasty, and long cephalomedullary nails. Statistically significant differences were observed only between scores for long cephalomedullary nails.

Conclusion: ChatGPT-4.0 scores were not concordant with AAOS scores, overestimating the appropriateness of total hip arthroplasty, hemiarthroplasty, and long cephalomedullary nails, and underestimating the other three. ChatGPT-4.0 was inadequate in selecting an appropriate treatment deemed acceptable, most reasonable, and most likely to improve patient outcomes.

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大语言模型 (LLM) 能否预测老年人急性髋部骨折的适当治疗?比较适当使用标准和 ChatGPT 的建议。
背景:急性髋部骨折是主要影响老年人的公共卫生问题。Chat Generative Pretrained Transformer(聊天生成预训练转换器)可能有助于为有益的治疗提供适当的临床建议:目的:通过比较 Chat Generative Pretrained Transformer (ChatGPT)-4.0 与美国矫形外科医师学会(AAOS)适当使用标准(Appropriate Use Criteria)在 30 种患者情况下对急性髋部骨折的适当性评分,评估 Chat Generative Pretrained Transformer (ChatGPT)-4.0 的准确性。"适当性 "表示治疗的意外健康益处远远超过预期的负面影响:方法:以 AAOS 适当使用标准为基准,用 1 到 9 的数字分数来评估适当性。对于每种患者情况,要求 ChatGPT-4.0 为处理急性髋部骨折的六种治疗方法打分:结果:对 30 个患者场景进行了评估,得出 180 个配对分数。将 ChatGPT-4.0 与 AAOS 评分进行比较,发现多枚套管螺钉固定、全髋关节置换术、半关节置换术和长头髓内钉呈正相关。只有长头髓内钉的评分之间存在统计学意义上的差异:结论:ChatGPT-4.0评分与AAOS评分不一致,高估了全髋关节置换术、半关节置换术和长头髓内钉的适宜性,低估了其他三种手术的适宜性。ChatGPT-4.0 不足以选择被认为可接受、最合理、最有可能改善患者预后的适当治疗方法。
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来源期刊
CiteScore
2.60
自引率
6.70%
发文量
282
审稿时长
8 weeks
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