Movement Balance Evaluation for Basketball Training Through Multi-Source Sensors

G. Huang
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Abstract

Balance ability is the basic sports quality of athletes. For basketball players, balance training includes take-off, turning, confrontation, shooting, landing, and other links. If the players have good balance ability, they can effectively prevent sports injury and competition interference and improve the performance of basketball competition. This paper adopts the acceleration signals from multi-source sensors to evaluate movement balance for basketball training. First, acceleration signals are collected by acceleration sensors to depict the basketball player's actions. Second, the hidden Markov model is used to describe the change or transfer of different states during player's actions. Third, the acceleration signal and observation sequence from hidden Markov are used to determine whether the player is under imbalance state. The effectiveness is evaluated on a private dataset.
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基于多源传感器的篮球训练运动平衡评价
平衡能力是运动员的基本运动素质。对于篮球运动员来说,平衡训练包括起跳、转身、对抗、投篮、落地等环节。如果运动员有良好的平衡能力,就能有效地防止运动损伤和比赛干扰,提高篮球比赛的成绩。本文采用多源传感器的加速度信号对篮球训练中的运动平衡进行评价。首先,通过加速度传感器采集加速度信号来描绘篮球运动员的动作。其次,使用隐马尔可夫模型来描述玩家行动过程中不同状态的变化或转移。第三,利用隐马尔可夫的加速度信号和观察序列来判断玩家是否处于不平衡状态。有效性在私有数据集上进行评估。
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