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Title
Road traffic forecasting: recent advances and new challenges
Author
Laña, IbaiORCID
Author (from another institution)
Del Ser, Javier
Vélez, Manuel
Vlahogianni, Eleni I
xmlui.dri2xhtml.METS-1.0.item-contributorDepartment
Business Data Anaytics
Research Group
Nuevos negocios
Other institutions
https://ror.org/02fv8hj62
https://ror.org/000xsnr85
https://ror.org/03b21sh32
https://ror.org/03cx6bg69
Version
Postprint
Document type
Journal Article
Language
English
Rights
@ 2018 The authors, published by IEEE
Access
Open access
URI
https://hdl.handle.net/20.500.11984/14560
Publisher’s version
10.1109/MITS.2018.2806634
Published at
IEEE Intelligent transportation systems magazine  Summer 2018
xmlui.dri2xhtml.METS-1.0.item-publicationfirstpage
93
xmlui.dri2xhtml.METS-1.0.item-publicationlastpage
109
Publisher
IEEE
Keywords
Traffic forecasting
Traffic management
Machine learning
Big Data
Subject (UNESCO Thesaurus)
Urban traffic
Abstract
Due to its paramount relevance in transport planning and logistics, road traffic forecasting has been a subject of active research within the engineering community for more than 40 years. In the be ... [+]
Due to its paramount relevance in transport planning and logistics, road traffic forecasting has been a subject of active research within the engineering community for more than 40 years. In the beginning most approaches relied on autoregressive models and other analysis methods suited for time series data. More recently, the development of new technology, platforms and techniques for massive data processing under the Big Data umbrella, the availability of data from multiple sources fostered by the Open Data philosophy and an ever-growing need of decision makers for accurate traffic predictions have shifted the spotlight to data-driven procedures. This paper aims to summarize the efforts made to date in previous related surveys towards extracting the main comparing criteria and challenges in this field. A review of the latest technical achievements in this field is also provided, along with an insightful update of the main technical challenges that remain unsolved. The ultimate goal of this work is to set an updated, thorough, rigorous compilation of prior literature around traffic prediction models so as to motivate and guide future research on this vibrant field. [-]
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