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◆ BMC sports science, medicine & rehabilitation2026-09-08

Badmintonvision: a deep learning framework for automated tactical analysis in elite badminton.

Yongjie Liang, Yajun Zhou, Gang Zhang

原始摘要(英文原文)· Original abstract
Tactical analysis in badminton is critical for performance optimization, yet traditional manual video review is time-consuming, subjective, and difficult to scale. Existing deep learning approaches struggle with rapid stroke recognition from single frames and require extensive labelled data. We present BadmintonVision, an integrated framework combining self-supervised learning (SSL), temporal modelling, and tactical analysis for automated badminton analysis. The detection model is pretrained on 139,501 unlabelled images using ConvNeXt V2. We develop MotionFormer, a Transformer-based module processing 10-frame windows (400 ms) to capture complete stroke cycles and construct a dataset of 30,000 expert-annotated images from BWF World Championships (2019-2025) covering five action classes. BadmintonVision achieves 94.1% detection accuracy (mAP@0.5), with SSL pretraining providing a 9.8% relative gain in stroke recognition and temporal modelling providing an additional 6.3% relative gain. Movement analysis reveals that scoring rallies correlate with higher path efficiency (Cohen's d = 1.77) and shorter recovery times (d = - 1.56), though these correlational findings warrant cautious interpretation. In an exploratory, gender-stratified analysis, Markov-chain modelling further suggests preliminary, gender-associated regularities in stroke-transition sequences; given the limited number of games and players analysed, these patterns are descriptive and warrant confirmation in larger, balanced samples. BadmintonVision offers a reproducible approach for quantitative tactical analysis supporting coaching decisions and performance research in elite badminton.
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Badmintonvision: a deep learning framework for automated tactical analysis in elite badminton. — 科研速览 Science Skim