Radio map position inference algorithm for indoor positioning systems

Wei Liu, Bing Qiang Ng, Bin Liu, Yong Liang Guan, Yan Hao Leow, Jun Huang

Research output: Chapter in Book/Report/Conference proceedingConference contribution

4 Citations (Scopus)

Abstract

Indoor positioning systems (IPS) have gain significant attention in the recent years; due to their relative low cost and high accuracy. However, till today, RSSI (received signal strength indicator)-based localization method pose a major challenge to engineers. The effects of severe fading and dynamic nature of the indoor environment greatly degrade the accuracy of the system. In this paper, a position inference algorithm using radio map is proposed to improve the accuracy of RSSI-based indoor locating systems. The radio map is first setup during the calibration phase; samples of RSSI at each point, within the area of interest, is recorded and converted into probability density function. During operation phase an inference algorithm, based on Bayesian probability and distance of the calibrated points involved, can determine the likely position of the object of interest that is between the calibrated points. The system yields an accuracy of less than 1.5 meter, which is better than the current RSSI-based localization system.

Original languageEnglish
Title of host publication2012 18th IEEE International Conference on Networks, ICON 2012
Pages161-166
Number of pages6
DOIs
Publication statusPublished - 2012
Externally publishedYes
Event2012 18th IEEE International Conference on Networks, ICON 2012 - Singapore, Singapore
Duration: Dec 12 2012Dec 14 2012

Publication series

NameIEEE International Conference on Networks, ICON
ISSN (Print)1556-6463

Conference

Conference2012 18th IEEE International Conference on Networks, ICON 2012
Country/TerritorySingapore
CitySingapore
Period12/12/1212/14/12

ASJC Scopus Subject Areas

  • Computer Networks and Communications
  • Software
  • Electrical and Electronic Engineering
  • Safety, Risk, Reliability and Quality

Keywords

  • Bayesian
  • IPS (indoor positioning systems)
  • RSSI (received signal strength indicator)

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