Enhanced Aquatic Athlete Fitness Assessment with a Resilient PSO-XGBoost Technique

Authors

  • Geetha Poornima K., Krishna Prasad K., Vinayachandra

Keywords:

PSO, Grid Search, Random Search, Regression, Hyper-parameter tuning

Abstract

Being active is a key ingredient for a healthier lifestyle. When a body is kept active, the entire system uses more energy, and when are burned more than consumed to maintain a healthier state of being. Moreover, burning appropriate calorie levels lowers the risk of cardio diseases and lowers the stress and feeling of anxiety. Swimming is one of the primary sports activities that engages all muscle groups, and the cardio system offers virus health benefits and fitness. Unlike sports, swimming can work on every muscle, as sprint kicking streamlines position activities, which elevates the heart rate and higher calories burned. Wearable sensors such as smartwatches and calorie trackers are used in measuring these calorie ranges, which are burnt by swimming. Predicting the fitness of a swimmer as the primitive activity in reducing the calories by using a hyperparameter tuning approach for enhanced exploration ability using grid search and random search strategies and PSO to optimize the outcomes. Besides, hyperparameters are tuned in the Random Forest (RF), Decision Tree (DT), AdaBoost, and XG-boost regression model for an error-free outcome and with satisfactory performance analytical values. Finally, the performance of the proposed model is assessed using performance metrics such as R-square, RMSE, MSE, and MAE. Further, the proposed model is compared with the existing models to determine the efficiency of the proposed framework.

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Published

12.06.2024

How to Cite

Geetha Poornima K. (2024). Enhanced Aquatic Athlete Fitness Assessment with a Resilient PSO-XGBoost Technique. International Journal of Intelligent Systems and Applications in Engineering, 12(4), 2918 –. Retrieved from https://ijisae.org/index.php/IJISAE/article/view/6777

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Research Article

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