Abstract
Traditional table tennis technique evaluation relies heavily on coaches’ subjective judgment, which limits the objectivity, consistency, and scalability of instructional feedback. To address this problem, this study proposes a multi-dimensional joint quantitative evaluation method for table tennis techniques based on OpenPose and YOLOv8 using consumer-grade high-frame-rate video. A total of 50 participants were recruited and divided into a high-level group and a low-level group. Standardized forehand drive and backhand push tasks were recorded using a synchronized dual-view camera setup. OpenPose was used to extract upper-body keypoint trajectories for kinematic analysis, while YOLOv8 was employed to detect and track the ball, racket, and net for outcome-related feature extraction. Based on these data, seven core indicators covering movement stability, coordination, timing, smoothness, and hitting effectiveness were selected to construct a quantitative scoring model, which was further optimized by ridge regression and validated against expert ratings from three senior athletes/coaches. The results show significant between-group differences in multiple technical dimensions, including impact accuracy, smoothness, trajectory consistency, and limb coordination ( (Formula presented.) ). The model score was strongly correlated with expert ratings ( (Formula presented.), (Formula presented.) ) and demonstrated high reliability ( (Formula presented.) ). These findings indicate that the proposed framework can provide a low-cost, non-invasive, and practically effective solution for intelligent table tennis teaching, technical diagnosis, and skill-level evaluation.
| Original language | English |
|---|---|
| Article number | 4661 |
| Journal | Applied Sciences (Switzerland) |
| Volume | 16 |
| Issue number | 10 |
| DOIs | |
| State | Published - May 2026 |
Keywords
- intelligent coaching
- pose estimation
- quantitative evaluation
- sports biomechanics
- table tennis
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