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August 14, 2025Applied Sciences0 citationsOpen Access

Speed Climbing Analysis System Based on Spatial Positioning and Posture Recognition: Design and Effectiveness Assessment

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PHPingao HuangTHTao HuangZXZhihong Xu

Key Points

  • The speed climbing analysis system achieves a mean deviation of 0.061 m from video-based measurements, indicating high precision.
  • Analysis revealed significant differences in average path lengths and movement inflections between male and female climbers.
  • Using a combination of HTC Vive trackers and BlazePose, the system successfully captures climbing posture and trajectory in real-time.
  • The system offers coaches essential metrics to enhance athlete performance based on precise climbing data.

Abstract

The human body posture and trajectory are important parameters of the optimal path in speed climbing, and current researchers are focused on them. However, the performance of the newly developed analysis tools for synchronously and accurately analyzing climbing posture and trajectory is limited. This study develops an innovative speed climbing analysis system (SCAS) that integrates three-dimensional trajectory tracking using HTC Vive trackers and full-body posture capture with BlazePose. And the system is validated. Climbing trials were recorded from twelve professional athletes (speed climbers, eight males and four females; age 22 ± 2.2 years, all with ≥1 year of competitive experience) on a standard International Federation of Sport Climbing (IFSC) speed wall. The SCAS’s accuracy was analyzed by comparing its trajectory measurements to a video-based reference: the mean deviation was 0.061 ± 0.005 m (mean ± SD, 95% confidence interval 0.058, 0.064 m), indicating high precision. Trajectory metrics between genders were compared using independent-sample t-tests, revealing that male climbers had significantly shorter average path lengths (p < 0.05) and fewer movement inflections than female climbers. Finally, the group-optimal path derived from the data showed only slight deviations from the top-performing climbers’ paths. The proposed SCAS enables synchronous, millimeter-level tracking of climbing trajectory and posture, and can provide coaches with quantitative feedback for each athlete’s climbing strategy.

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Cite This Study

Huang et al. (2025) studied this question.

synapsesocial.com/papers/68af50a1ad7bf08b1ead8abahttps://doi.org/10.3390/app15168959
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