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Article
Hierarchical Syntactic Models for Human Activity Recognition through Mobility Traces
Personal and Ubiquitous Computing
  • Enrico Casella
  • Marco Ortolani
  • Simone Silvestri
  • Sajal K. Das, Missouri University of Science and Technology
Abstract

Recognizing users’ daily life activities without disrupting their lifestyle is a key functionality to enable a broad variety of advanced services for a Smart City, from energy-efficient management of urban spaces to mobility optimization. In this paper, we propose a novel method for human activity recognition from a collection of outdoor mobility traces acquired through wearable devices. Our method exploits the regularities naturally present in human mobility patterns to construct syntactic models in the form of finite state automata, thanks to an approach known as grammatical inference. We also introduce a measure of similarity that accounts for the intrinsic hierarchical nature of such models, and allows to identify the common traits in the paths induced by different activities at various granularity levels. Our method has been validated on a dataset of real traces representing movements of users in a large metropolitan area. The experimental results show the effectiveness of our similarity measure to correctly identify a set of common coarse-grained activities, as well as their refinement at a finer level of granularity.

Department(s)
Computer Science
Research Center/Lab(s)
Center for High Performance Computing Research
Second Research Center/Lab
Intelligent Systems Center
Keywords and Phrases
  • Grammatical inference,
  • Human activity recognition,
  • Mobility
Document Type
Article - Journal
Document Version
Final Version
File Type
text
Language(s)
English
Rights
© 2020 Springer, All rights reserved.
Creative Commons Licensing
Creative Commons Attribution 4.0
Publication Date
8-1-2020
Publication Date
01 Aug 2020
Disciplines
Citation Information
Enrico Casella, Marco Ortolani, Simone Silvestri and Sajal K. Das. "Hierarchical Syntactic Models for Human Activity Recognition through Mobility Traces" Personal and Ubiquitous Computing Vol. 24 Iss. 4 (2020) p. 451 - 464 ISSN: 1617-4909; 1617-4917
Available at: http://works.bepress.com/sajal-das/172/