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Review Paper of Human Activity Recognition using Smartphone

Authors :
Deepak Garg
Satyam Porwal
Saurabh Singh
Nidhi Yadav
Source :
2021 5th International Conference on Trends in Electronics and Informatics (ICOEI).
Publication Year :
2021
Publisher :
IEEE, 2021.

Abstract

Human recogntion technologies are gaining significant research attention, where the model can be trained to be more precise to recognize the poses performed by objects. Activity identification is a kind of problem, which needs more research consideration and improvement. There is also an increasing need to detect different poses of objects. To tackle the issue, different sensors like Gyroscope and Accelerometer are required to classify the data in the form of images using machine learning algorithms like SVM and CNN. These approaches help us in implementing real-time applicaions such as health monitoring, tracking sports activity and security. The paper also discusses about its benefits, limitations and prominent approach for human activity recognition.

Details

Database :
OpenAIRE
Journal :
2021 5th International Conference on Trends in Electronics and Informatics (ICOEI)
Accession number :
edsair.doi...........8169d4aeb694eceda36ac662c569142e