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A comparison of information theoretic functions for tracking maneuvering targets

  • W. Lu*
  • , G. Zhang
  • , S. Ferrari
  • *Corresponding author for this work
  • Duke University

Research output: Chapter in Book/Report/Conference proceedingConference contributionpeer-review

Abstract

Several information theoretic functions have been proposed in the literature to assess the information value of sensor measurements a posteriori, that is, after measurements have been obtained from one or more targets. Sensor planning algorithms, however, require that the value of future sensor measurements be computed a priori, based on available models and prior information. An approach was recently presented by the authors for estimating the expected information value of future sensor measurements in target classification problems. The approach derives expected information theoretic functions from probabilistic models of the sensors and the targets, conditioned on prior information. In this paper, the approach is extended to the problem of sensor planning for tracking maneuvering targets. The approach is illustrated for a sensor that obeys an exponential power law model of received isotropic energy, and a target that obeys a Markov motion model. The performance of five information theoretic functions is compared through numerical simulations, and the results show that the objective function based on conditional mutual information leads to the most effective sensor planning strategy.

Original languageEnglish
Title of host publication2012 IEEE Statistical Signal Processing Workshop, SSP 2012
Pages149-152
Number of pages4
DOIs
StatePublished - 2012
Externally publishedYes
Event2012 IEEE Statistical Signal Processing Workshop, SSP 2012 - Ann Arbor, MI, United States
Duration: 5 Aug 20128 Aug 2012

Publication series

Name2012 IEEE Statistical Signal Processing Workshop, SSP 2012

Conference

Conference2012 IEEE Statistical Signal Processing Workshop, SSP 2012
Country/TerritoryUnited States
CityAnn Arbor, MI
Period5/08/128/08/12

Keywords

  • Information theory
  • mutual information
  • planning
  • sensor
  • target
  • tracking

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