HUMAN ACTIVITY RECOGNITION USING LONG SHORT-TERM MEMORY NETWORK

被引:0
|
作者
Warunsin, Kulwarun [1 ]
Promjiraprawat, Kamphol [1 ]
Chitsobhuk, Orachat [2 ]
机构
[1] Ramkhamhang Univ, Dept Comp Engn, Bangkok 10240, Thailand
[2] King Mongkuts Inst Technol Ladkrabang, Sch Engn, Chalongkrung Rd, Bangkok 10520, Thailand
关键词
Human Activity Recognition (HAR); Long Short-Term Memory (LSTM); Deep learning optimizer; Cross validation; Generalization performance; MODEL;
D O I
10.24507/ijicic.19.03.973
中图分类号
TP18 [人工智能理论];
学科分类号
081104 ; 0812 ; 0835 ; 1405 ;
摘要
. Human Activity Recognition (HAR) plays a significant role in the Ambient Assisted Living (AAL) system, which aims to provide sustainable healthcare for an aging population and those with special needs. HAR automatically categorizes people's activities while they wear wearable sensors. With an effective HAR system, we should be able to monitor the behavior of individuals as well as their activities and issue specific warnings as necessary. The goal of this paper is to propose a methodological framework for developing the HAR model based on an application of Long Short-Term Memory (LSTM) network. We investigated the model selection and parameters based on Cross Validation (CV) and learning rate optimization across two well-known public HAR datasets, MobiAct and WISDM. An analysis of the CV variance becomes a considerable impact on the generalization of the model's learning capability. The relationship between the CV variance and accuracy can be used to guide the selection of the fold number in k-fold CV. Our studies had shown the scientific evidence and technical guidance for solving the HAR problem with improvements not only in the proposed model's accuracy and AUC of more than 99% on average, but also in its generalization performance, which could be useful for future related studies.
引用
收藏
页码:973 / 990
页数:18
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