DocumentCode :
1810128
Title :
Network-side positioning of cellular-band devices with minimal effort
Author :
Chakraborty, Ayon ; Ortiz, Luis E. ; Das, Samir R.
Author_Institution :
Comput. Sci. Dept., Stony Brook Univ., Stony Brook, NY, USA
fYear :
2015
fDate :
April 26 2015-May 1 2015
Firstpage :
2767
Lastpage :
2775
Abstract :
We address the problem of network-side localization where cellular operators are interested in localizing cellular devices by means of signal strength measurements alone. While fingerprinting-based approaches have been used recently to address this problem, they require significant amount of geo-tagged (`labeled´) measurement data that is expensive for the operator to collect. Our goal is to use semi-supervised and unsupervised machine learning techniques to reduce or eliminate this effort without compromising the accuracy of localization. Our experimental results in a university campus (6 sq. km) demonstrate that sub-100m median localization accuracy is achievable with very little or no labeled data so long as enough training is possible with `unlabeled´ measurements. This provides an opportunity for the operator to improve the model with time. We present extensive analysis of the error characteristics to gain insight and improve performance, including understanding spatial properties and developing confidence measures.
Keywords :
cellular radio; learning (artificial intelligence); mobility management (mobile radio); cellular-band devices; fingerprinting-based approaches; geo-tagged measurement data; machine learning techniques; median localization accuracy; network-side localization; network-side positioning; signal strength measurements; Accuracy; Base stations; Computational modeling; Data models; Maximum likelihood estimation; Training; Training data;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Computer Communications (INFOCOM), 2015 IEEE Conference on
Conference_Location :
Kowloon
Type :
conf
DOI :
10.1109/INFOCOM.2015.7218669
Filename :
7218669
Link To Document :
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