DocumentCode :
2158980
Title :
Route prediction using trip observations and map matching
Author :
Tiwari, V.S. ; Arya, A. ; Chaturvedi, Sushil
Author_Institution :
Fair Isaac Corp. (FICO), Bangalore, India
fYear :
2013
fDate :
22-23 Feb. 2013
Firstpage :
583
Lastpage :
587
Abstract :
This paper uses location data traces (from GPS, Mobile Signals etc.) of past trips of vehicles to develop algorithm for predicting the end-to-end route of a vehicle. Focus is on overall route prediction rather than predicting road segments in short term. Researches in past for route prediction makes use of raw location data traces data decomposed into trips for such route predictions. This paper introduces an additional step to convert trips composed of location data traces points to trips of road network edges. This requires the algorithm to make use of road networks. We show that efficiency in storage and time complexity can be achieved without sacrificing the accuracy by doing so. Moreover, its well-known that location traces data has inherent inaccuracies due to hardware limitations of devices. Most of the researches don´t handle it. This paper presents the results of route prediction algorithms under inaccuracies in data.
Keywords :
Global Positioning System; computational complexity; geographic information systems; pattern clustering; road traffic; road vehicles; traffic engineering computing; map matching; raw location data trace data point decomposition; road network edge trips; route prediction; time complexity; trip observations; vehicle end-to-end route prediction; vehicle trips; Accuracy; Algorithm design and analysis; Clustering algorithms; Global Positioning System; Prediction algorithms; Roads; Vehicles; GPS; clustering; graph; map matching; trips;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Advance Computing Conference (IACC), 2013 IEEE 3rd International
Conference_Location :
Ghaziabad
Print_ISBN :
978-1-4673-4527-9
Type :
conf
DOI :
10.1109/IAdCC.2013.6514292
Filename :
6514292
Link To Document :
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