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Triaxial accelerometer sensor trials for bat swing interpretation in cricket

机译:三轴加速度计传感器试验,用于板球的蝙蝠摇摆解释

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Analysis of bat swing is important to the assessment and understanding of effective batting in cricket. The key features of a bat swing include the spatio-temporal position of the bat before contact with the ball and the bat velocity. The current methods of bat swing analysis such as video tracking and coach observation are labor intensive and expensive. This work examined the use of small, low-cost, three dimensional motion sensors as a replacement to existing methods. Using two bat-mounted accelerometer sensors, two experiments were conducted: a set of ball-free, straight drives by an amateur batter at nominal constant speed, and a set of straight drives at different speeds by the same batter accompanied by video tracking. In all cases the bat swing was in the x-z plane of the sensors placed on the reverse face of the bat. The bat face remains in the z direction. The objective was to minimize accelerations perpendicular to the swing plane. Data analysis revealed consistent acceleration profiles with minimal acceleration perpendicular to the plane of the swing (x-z plane). The time lag between the z acceleration peak and the x acceleration peak is related to the speed of the bat. The highest peak in x acceleration results from the higher centrifugal force with minimum radius of gyration while the bat was close to the batter (confirmed by the video footage). This is the dominant rotational component plus an additional gravitational force in the x direction when the bat is aligned to gravity. The sensor attached to the on-side edge of the bat showed higher peak magnitude in x acceleration compared to that from the off-side edge, which indicated variation between the two edges of the bat during swing. The tilted position of the stationary bat at the start of each swing was determined from the x and z axis profiles from minus one g and zero respectively. Different peak accelerations were evident for different swing intensities. This study indicated that the accelerometer sensors can provide reliable bat swing information.
机译:蝙蝠摆动分析对于蟋蟀有效击球的评估和理解是重要的。蝙蝠摆动的关键特征包括与球和蝙蝠速度接触之前蝙蝠的时空位置。目前的蝙蝠挥杆分析方法如视频跟踪和教练观察,是劳动密集型和昂贵的。这项工作检测了使用小,低成本三维运动传感器作为现有方法的替代品。使用两个蝙蝠安装的加速度计传感器,进行了两台实验:由名义恒定速度的业余面糊,并以不同速度的一组直接驱动器伴随着视频跟踪的不同速度。在所有情况下,蝙蝠摆动位于放置在蝙蝠的反向面上的传感器的X-Z平面中。蝙蝠面保持在z方向上。目的是最大限度地减少垂直于摆动平面的加速度。数据分析显示了一致的加速曲线,其垂直于摆动平面(X-Z平面)的最小加速度。 z加速度峰值和X加速峰之间的时间滞后与蝙蝠的速度有关。 X加速度的最高峰值来自较高的离心力,在蝙蝠靠近面糊时,较高的离心力导致最小的痛苦(通过视频镜头确认)。当蝙蝠与重力对齐时,这是主导旋转部件加上X方向上的额外重力。与从侧边缘的偏面边缘相比,附接到蝙蝠的上侧边缘的传感器在X加速度下显示出较高的峰值幅度,这在摆动期间指示蝙蝠的两个边缘之间的变化。静止蝙蝠在每个摆动的开始处的倾斜位置分别从减去1 g和零的x和z轴分布确定。不同的挥杆强度明显看出不同的峰值加速度。本研究表明加速度计传感器可以提供可靠的蝙蝠摆动信息。

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