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Spinal cord injury impact on skin temperature regulation during graded exercise: metaheuristic data mining-based predictions

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Figshare2026-02-04 更新2026-04-28 收录
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https://figshare.com/articles/dataset/Spinal_cord_injury_impact_on_skin_temperature_regulation_during_graded_exercise_metaheuristic_data_mining-based_predictions/31249585
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People with spinal cord injury (SCI) show impaired thermoregulation during exercise, making skin temperature a noninvasive indicator. This study applies hybrid Extreme Learning Machine (ELM) models optimized with Ant Lion, Dragonfly, and Evolution Strategy algorithms to predict skin and core temperature dynamics during graded arm-crank exercise in 32 participants (16 SCI, 16 controls). The Dragonfly-optimized ELM achieved the highest accuracy (R² = 99.705, RMSE = 0.014) with no significant difference between predicted and measured core temperatures (p > 0.05). Feature-importance and SHAP analyses identified peak power output, group, and stage as dominant predictors, indicating reduced peripheral thermoregulatory variability in SCI.
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2026-02-04
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