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MPaaS: Mobility prediction as a service in telecom cloud
Authors:Haoyi Xiong  Daqing Zhang  Daqiang Zhang  Vincent Gauthier  Kun Yang  Monique Becker
Affiliation:1. CNRS UMR 5157 SAMOVAR, Institut Mines-Tèlècom, Tèlècom SudParis, 9 Rue Charles Fourier, 91000, Evry, France
2. School of Software Engineering, Tongji University, Shanghai, 201804, China
3. School of Computer Science & Electronic Engineering, University of Essex, Wivenhoe Park, Colchester, CO4 3SQ, UK
Abstract:Mobile applications and services relying on mobility prediction have recently spurred lots of interest. In this paper, we propose mobility prediction based on cellular traces as an infrastructural level service of telecom cloud. Mobility Prediction as a Service (MPaaS) embeds mobility mining and forecasting algorithms into a cloud-based user location tracking framework. By empowering MPaaS, the hosted 3rd-party and value-added services can benefit from online mobility prediction. Particularly we took Mobility-aware Personalization and Predictive Resource Allocation as key features to elaborate how MPaaS drives new fashion of mobile cloud applications. Due to the randomness of human mobility patterns, mobility predicting remains a very challenging task in MPaaS research. Our preliminary study observed collective behavioral patterns (CBP) in mobility of crowds, and proposed a CBP-based mobility predictor. MPaaS system equips a hybrid predictor fusing both CBP-based scheme and Markov-based predictor to provide telecom cloud with large-scale mobility prediction capacity.
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