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Adaptive Sports Optimization Framework Based on I-JEPA: Standing Long Jump Performance Prediction and PSO Trajectory Optimization

  • Yueting Yao,
  • Yuhang Chen,
  • Weijie Lan

摘要

Standing long jump performance optimization has long been a focal point in sports biomechanics research. This study introduces an adaptive framework integrating I-JEPA (Image-based Joint Embedding Predictive Architecture) world models with Particle Swarm Optimization (PSO) for performance prediction and feature space exploration. Through self-supervised masked prediction mechanisms, the proposed framework learns motion dynamics representations employing an architecture comprising multi-scale temporal stem, Transformer encoder, and attention statistical pooling modules. Further, PSO is introduced as a hypothesis generation tool for heuristic exploration in the trained model’s feature space. Experimental validation on a collected sports biomechanics dataset (11 athletes, 35 jump trials in total; 10 athletes with 34 trials used for training and cross-validation, 1 athlete reserved for external validation) reveals that, under an athlete-level grouped cross-validation protocol, the model achieves Mean Absolute Error (MAE) of \(0.157 \pm 0.053\) 0.157 ± 0.053 m, outperforming Transformer without JEPA pretraining (0.199 m), TCN (0.207 m), and Graph Skeleton (0.221 m) baselines. Repeated resampling experiments further validate model robustness. Systematic ablation experiments verify module effectiveness: removing attention pooling increases MAE by \(19.9\%\) 19.9 % , and removing reconstruction loss increases MAE by \(21.6\%\) 21.6 % . PSO explores a sample’s predicted score from 1.542 m to 1.583 m in the feature space; this result represents a model-space hypothesis rather than a guaranteed real-world performance improvement. This work, as a proof-of-concept for future personalized training systems, combines world models with heuristic exploration, providing an exploratory analysis framework for athlete training.