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Considerations for enhancing the clinical translational potential of LLM-Based TBI mortality prediction models
1University of International Business and Economics, Beijing, China.
Abstract:
This study explores the use of GPT-5 and traditional machine learning by scholars such as Tu et al. to predict the risk of emergency death in traumatic brain injury (TBI), and affirms the value of their experimental design and method exploration in promoting AI assisted TBI triage. At the same time, it is pointed out that there are still four shortcomings in this study: a lack of clinical experts to validate LLM output, no exploration of subgroup dynamic threshold adaptation, no evaluation of model inference delay, and no sensitivity analysis of prompt words. The study suggests that further research is needed to validate the clinical effectiveness of LLM, optimize the practicality and reproducibility of the model, and further enhance the clinical translational potential and methodological rigor of the LLM based TBI prediction model.
