作为专家系统组成部分的高校网球呛气检测知识库模型

Stepan Vancurik, D. Callahan
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引用次数: 1

摘要

专家系统是一种通过模拟人类的智力、行为和思维,将人类的专业知识转移到特定领域的工具。在运动中,压力下窒息的特征是在某些动作中表现不佳。专家系统已经在包括体育和竞技在内的各个领域得到了应用。然而,专家系统模型的应用尚未解决压力下的窒息问题。因此,本文提出了一种通过设计专家系统的重要组成部分知识库来检测大学生网球呛球的方法。知识库模型是基于具有美国大学执教经验的网球教练员的专业知识而形成的。该模型设计用于三个检测级别:一般、半个性化和个性化。通过摆拍速度传感器采集的拍子摆拍速度测量数据来检测窒息力矩。研究数据是由8名参与者收集的,他们总共完成了32次网球训练。结果表明,该模型的实用性和在大学网球挥拍速度测量中进行噎球检测的可行性,噎球检测的准确率达到68%,错误率保持在15%。结果表明,大学生网球运动员的窒息模式存在个体差异,个体导向的检测技术会带来更好的检测性能。研究的未来计划是收集更多参与者的测量数据,并将收集到的数据与心率等生理参数测量和其他运动特定信息(如步法表现)结合起来。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Knowledge Base Model for Choking Detection in College Tennis as a Component of an Expert System
Expert system is a tool to transfer human expertise into specific domains by simulating human intelligence, behavior, and thinking. Choking under pressure in sports is characterized as suboptimal performance in certain actions. Expert systems have found their applications in various domains including sports and athletics. However, the concept of choking under pressure is yet to be tackled by the utilization of the expert system model. Therefore, this paper proposes an approach for choking detection in college tennis by designing an essential component of an expert system, knowledge base. The knowledge base model is formed based upon the expertise of tennis coaches with American college coaching experience. The model is designed for three detection levels: general, semi-personalized, and personalized. The detection of choking moments is done from racquet swing speed measurements collected by a swing speed sensor. Study data were collected with eight participants completing a total of 32 tennis sessions. Results suggest practicality of the proposed model and feasibility of choking detection in college tennis from swing speed measurements by showing that choking detection can reach 68% accuracy while keeping the error rate at 15%. The results reveal individual variations of choking patterns among college tennis players as individually oriented detection techniques return superior detection performance. Future plans for the research are to collect measurements with additional participants and to combine the gathered data with physiological parameter measurements such as heart rate and with other sport specific information such as footwork performance.
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