DocumentCode :
2358321
Title :
Mining Personally Important Places from GPS Tracks
Author :
Zhou, Changqing ; Bhatnagar, Nupur ; Shekhar, Shashi ; Terveen, Loren
Author_Institution :
Minnesota Univ., Minneapolis
fYear :
2007
fDate :
17-20 April 2007
Firstpage :
517
Lastpage :
526
Abstract :
The discovery of a person\´s personally important places involves obtaining the physical locations for a person\´s places that matter to his daily life and routines. This problem is driven by the requirements from emerging location-aware applications, which allow a user to pose queries awl obtain, information in reference, to places, e.g., \´\´home", \´\´work" or \´\´Northwest Health Club". It is a challenge to map from physical locations to jxtrsonally meaningful places because GPS tracks are continuous data both spatially and temporally, while most existing data mining techniques expect discrete data. Previous work has explored algorithms to discover personal places from location data. However, they all have limitations. Our work proposes a two-step approach that discretized continuous GPS data into places and learns important places from the place features. Our approach was validated using real user data and shown to have good accuracy when applied in predicting not only important and frequent places, but also important and not so frequent places.
Keywords :
Global Positioning System; data mining; geophysics computing; GPS tracks; data mining techniques; location-aware applications; personally important places mining; physical locations; Clustering algorithms; Computer science; Data mining; Educational institutions; Frequency; Global Positioning System; Motion pictures; Partitioning algorithms; Rail transportation; Urban areas;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Data Engineering Workshop, 2007 IEEE 23rd International Conference on
Conference_Location :
Istanbul
Print_ISBN :
978-1-4244-0832-0
Electronic_ISBN :
978-1-4244-0832-0
Type :
conf
DOI :
10.1109/ICDEW.2007.4401037
Filename :
4401037
Link To Document :
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