scholarly journals Design and Implementation of Human Motion Recognition Information Processing System Based on LSTM Recurrent Neural Network Algorithm

2021 ◽  
Vol 2021 ◽  
pp. 1-9
Author(s):  
Xue Li

With the comprehensive development of national fitness, men, women, young, and old in China have joined the ranks of fitness. In order to increase the understanding of human movement, many researches have designed a lot of software or hardware to realize the analysis of human movement state. However, the recognition efficiency of various systems or platforms is not high, and the reduction ability is poor, so the recognition information processing system based on LSTM recurrent neural network under deep learning is proposed to collect and recognize human motion data. The system realizes the collection, processing, recognition, storage, and display of human motion data by constructing a three-layer human motion recognition information processing system and introduces LSTM recurrent neural network to optimize the recognition efficiency of the system, simplify the recognition process, and reduce the data missing rate caused by dimension reduction. Finally, we use the known dataset to train the model and analyze the performance and application effect of the system through the actual motion state. The final results show that the performance of LSTM recurrent neural network is better than the traditional algorithm, the accuracy can reach 0.980, and the confusion matrix results show that the recognition of human motion by the system can reach 85 points to the greatest extent. The test shows that the system can recognize and process the human movement data well, which has great application significance for future physical education and daily physical exercise.

2021 ◽  
Vol 2021 ◽  
pp. 1-10
Author(s):  
Shuwei Zhao

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.


Nano Energy ◽  
2021 ◽  
pp. 106197
Author(s):  
Qianqian Shi ◽  
Dapeng Liu ◽  
Dandan Hao ◽  
Junyao Zhang ◽  
Li Tian ◽  
...  

1974 ◽  
Author(s):  
Kenneth Orr ◽  
Jerry Hammett ◽  
Daniel B. MaGraw ◽  
Andrew O. Atkinson ◽  
Mark Gitenstein

Author(s):  
Г.А. Онтужева

В статье рассматривается возможность применения методов решения транспортной задачи к задаче распределения вычислительных ресурсов в гетерогенных распределенных системах обработки информации. Приведено сравнение эффективности алгоритмов с ранее разработанным алгоритмом наименьшего времени для атомарных заявок. The paper examines the applicability of methods for solving the transport problem to the problem of distribution of computing resources in heterogeneous distributed information processing systems. A comparison of the efficiency of the algorithms with the previously developed least time algorithm for atomic claims is given.


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