DocumentCode :
539096
Title :
Extended object filtering using spatial independent cluster processes
Author :
Swain, A. ; Clark, D.
Author_Institution :
Joint Res. Inst. in Signal & Image Process., Heriot-Watt Univ., Edinburgh, UK
fYear :
2010
fDate :
26-29 July 2010
Firstpage :
1
Lastpage :
8
Abstract :
Recent research into multi-object filtering for non-standard targets introduced alternative approaches for target group representation. In these approaches a measurement model (likelihood) was suggested that led to a representation of the measurements as a spatial point process, namely a Poisson point process. In this paper we take a more traditional approach to extended target tracking. We assume a `standard´ measurement model (at most one measurement generated from a target point), but represent the target group (extended targets) as a spatial cluster process, in particular an independent cluster process with a fixed distribution on the component (daughter) process. With this assumption we are able to derive approximate measurement-update equations for the first order moment density of the extended object Bayes filter in a number of scenarios. Such approximations are Bayes optimal and provide estimates for the number of clusters (extended targets) and their locations.
Keywords :
Bayes methods; stochastic processes; target tracking; Poisson point process; approximate measurement-update equations; extended object Bayes filtering; extended target tracking; first order moment density; spatial independent cluster process; standard measurement model; target group representation; Approximation methods; Density measurement; Equations; Markov processes; Mathematical model; Predictive models; Target tracking; Tracking; estimation; filtering; spatial cluster processes;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Information Fusion (FUSION), 2010 13th Conference on
Conference_Location :
Edinburgh
Print_ISBN :
978-0-9824438-1-1
Type :
conf
DOI :
10.1109/ICIF.2010.5711886
Filename :
5711886
Link To Document :
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