An improved method for mobility prediction using a Markov model and density estimation
Menz, L; Herberth, R; Luo, C; et al.Gauterin, F; Gerlicher, A; Wang, Q
Date: 11 June 2018
Publisher
Institute of Electrical and Electronics Engineers (IEEE)
Publisher DOI
Abstract
The prediction of an individual's future locations is a significant part of scientific researches. While a variety of solutions have been investigated for the prediction of future locations, predicting departure and arrival times at predicted locations is a task with higher complexity and less attention. While the challenges of combining ...
The prediction of an individual's future locations is a significant part of scientific researches. While a variety of solutions have been investigated for the prediction of future locations, predicting departure and arrival times at predicted locations is a task with higher complexity and less attention. While the challenges of combining spatial and temporal information have been stated in various works, the proposed solutions lack accuracy and robustness. This paper proposes a simple yet effective way to predict not only an individual's future location, but also most probable departure and arrival times as well as the most probable route from origin to destination.
Computer Science
Faculty of Environment, Science and Economy
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