Data Collection and Analysis of Track and Field Athletes’ Behavior Based on Edge Computing and Reinforcement Learning

Author:

Han Di1ORCID

Affiliation:

1. Jilin Agricultural University, Changchun 130118, China

Abstract

With the development of multimedia technology, the computer auxiliary system has become an effective means of daily training in track and field. This paper designs a data acquisition and analysis system for track and field athletes. The system uses sensor modules attached to the athlete’s body to collect movement data for analysis. The whole system is implemented by edge computing architecture. In order to reduce average response time, the DDPG algorithm is used to optimize the resource allocation of the edge layer. Experimental results show that the response time of the proposed algorithm can be controlled within 1 s. Meanwhile, the SVM algorithm on the edge server is arranged to classify the data, and the overall recognition accuracy is over 90%.

Publisher

Hindawi Limited

Subject

Computer Networks and Communications,Computer Science Applications

Reference19 articles.

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3. Research and Analysis of Sports Training Real-Time Monitoring System Based on Mobile Artificial Intelligence Terminal

4. The design and application of system software about test evaluation and training of the athlete's movement function;S. Guo

5. Power-Delay Tradeoff in Multi-User Mobile-Edge Computing Systems

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