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基于 GA-BP 神经网络算法的人体运动识别信息处理系统优化。

Optimization of Human Motion Recognition Information Processing System Based on GA-BP Neural Network Algorithm.

机构信息

School of Physical Education, Xinxiang Medical University, Xinxiang, Henan 453003, China.

出版信息

Comput Intell Neurosci. 2021 Oct 27;2021:1110503. doi: 10.1155/2021/1110503. eCollection 2021.

Abstract

At present, there are some problems in the process of human motion recognition, such as poor timeliness and low fault tolerance rate. How to effectively identify the motion process accurately has become a hot spot in the optimization system. In the existing research studies, the recognition accuracy is not very good and the response time is long. To end this issue, the paper proposed an information processing system and optimization method of human motion recognition based on the GA-BP neural network algorithm. Firstly, a human motion recognition system based on dynamic capture recognition technology is designed, which realizes the recognition of motion information from common postures such as action span, speed change, motion trajectory, and other aspects in the process of human motion. Secondly, the proposed algorithm is used to comprehensively analyse and evaluate the motion state. Finally, experiments are designed to verify and analyse the results. Compared to some baseline methods in human motion recognition information systems, the system in this paper based on the GA-BP neural network algorithm has the advantages of higher data accuracy and response speed, which can quickly and accurately identify the muscle group change in the process of human motion, and it can also provide customized motion suggestions based on the results.

摘要

目前,在人类运动识别过程中存在一些问题,例如实时性差、容错率低等。如何有效地准确识别运动过程已成为优化系统的热点。在现有的研究中,识别精度不是很高,响应时间也较长。为了解决这个问题,本文提出了一种基于 GA-BP 神经网络算法的人类运动识别信息处理系统和优化方法。首先,设计了一种基于动态捕获识别技术的人类运动识别系统,实现了对人类运动过程中动作幅度、速度变化、运动轨迹等常见姿势的运动信息的识别。其次,利用提出的算法对运动状态进行综合分析和评价。最后,设计实验对结果进行验证和分析。与一些基线方法相比,本文基于 GA-BP 神经网络算法的人类运动识别信息系统具有更高的数据准确性和响应速度的优点,可以快速准确地识别人类运动过程中的肌肉群变化,并且可以根据结果提供定制化的运动建议。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0f39/8566086/22b177fbbce8/CIN2021-1110503.001.jpg

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