Human Activity Recognition using Recurrent Neural Networks
April 19, 2018 ยท Declared Dead ยท ๐ International Cross-Domain Conference on Machine Learning and Knowledge Extraction
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Authors
Deepika Singh, Erinc Merdivan, Ismini Psychoula, Johannes Kropf, Sten Hanke, Matthieu Geist, Andreas Holzinger
arXiv ID
1804.07144
Category
cs.NE: Neural & Evolutionary
Cross-listed
cs.LG,
stat.ML
Citations
163
Venue
International Cross-Domain Conference on Machine Learning and Knowledge Extraction
Last Checked
3 months ago
Abstract
Human activity recognition using smart home sensors is one of the bases of ubiquitous computing in smart environments and a topic undergoing intense research in the field of ambient assisted living. The increasingly large amount of data sets calls for machine learning methods. In this paper, we introduce a deep learning model that learns to classify human activities without using any prior knowledge. For this purpose, a Long Short Term Memory (LSTM) Recurrent Neural Network was applied to three real world smart home datasets. The results of these experiments show that the proposed approach outperforms the existing ones in terms of accuracy and performance.
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