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Evaluating a Multi-Camera Markerless System for Capturing Basketball-Specific Movements: An Exploration Using 25 Hz
Zhaoyu Li1, Zhenbin Tan1, Wen Zheng2
1Institute of Physical Education and Training, Capital University of Physical Education and Sports, Beijing 100191, China.
Sensors (Basel, Switzerland)
|March 14, 2026
Summary
Markerless motion capture at 25 Hz accurately tracks joint displacement for sports analysis. However, lower frame rates limit accuracy for velocity and acceleration, requiring further optimization for derivative variables.
Area of Science:
- Biomechanics
- Motion Analysis
- Sports Technology
Background:
- Markerless motion capture (MMC) offers a non-invasive approach to motion analysis.
- The validity of MMC at 25 Hz, common in broadcast and surveillance, is not well-established for sports applications.
Purpose of the Study:
- To evaluate the performance of a 25 Hz multi-camera MMC system using consumer cameras for basketball movements.
- To assess the accuracy of kinematic data derived from MMC at a standard broadcast frame rate.
Main Methods:
- Six consumer-grade MMC cameras (DJI Action 5 Pro, 25 fps) and a 10-camera Vicon system synchronously recorded athletes performing basketball tasks.
- Kinematic data were processed using an RTMDet-RTMPose pipeline and filtered at 6 Hz.
- Waveform validity was assessed using Pearson's correlation coefficient (r) and root mean square error (RMSE).
Main Results:
- Excellent agreement was found for joint displacement magnitudes (r = 0.916-0.994; nRMSE = 0.54-1.32%).
- Agreement decreased for velocity (r = 0.583-0.867) and acceleration (r = 0.232-0.677), indicating sensitivity to the low sampling rate.
- The 25 Hz MMC system showed limitations for high-precision impact analysis but acceptable accuracy for macroscopic tracking.
Conclusions:
- A 25 Hz MMC workflow provides acceptable accuracy for tracking joint displacement and quantifying external loads in resource-limited settings.
- The low sampling rate significantly impacts the accuracy of derivative kinematic variables (velocity, acceleration).
- Prioritizing temporal synchronization is crucial for improving the reliability of derivative variables in future MMC systems.

