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A Close Look into Human Activity Recognition Models using Deep Learning

2022-04-26 · Wei Zhong Tee, Rushit Dave, Naeem Seliya, Mounika Vanamala

Human activity recognition using deep learning techniques has become increasing popular because of its high effectivity with recognizing complex tasks, as well as being relatively low in costs compared to more traditional machine learning techniques. This paper surveys some state-of-the-art human activity recognition models that are based on deep learning architecture and has layers containing Convolution Neural Networks (CNN), Long Short-Term Memory (LSTM), or a mix of more than one type for a hybrid system. The analysis outlines how the models are implemented to maximize its effectivity and some of the potential limitations it faces.

📄 PDF Abstract BibTeX arXiv:2204.13589

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Activity RecognitionDeep LearningHuman Activity Recognition

Methods 이 논문이 사용한 방법론

Convolution A convolution is a type of matrix operation, consisting of a kernel, a small matrix of weights, that slides over input data performing element-wise multiplication with the…

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