DocumentCode
759437
Title
Chemical Plume Source Localization
Author
Pang, Shuo ; Farrell, Jay A.
Author_Institution
Dept. of Electr. Eng., California Univ., Riverside, CA
Volume
36
Issue
5
fYear
2006
Firstpage
1068
Lastpage
1080
Abstract
This paper addresses the problem of estimating a likelihood map for the location of the source of a chemical plume using an autonomous vehicle as a sensor probe in a fluid flow. The fluid flow is assumed to have a high Reynolds number. Therefore, the dispersion of the chemical is dominated by turbulence, resulting in an intermittent chemical signal. The vehicle is capable of detecting above-threshold chemical concentration and sensing the fluid flow velocity at the vehicle location. This paper reviews instances of biological plume tracing and reviews previous strategies for a vehicle-based plume tracing. The main contribution is a new source-likelihood mapping approach based on Bayesian inference methods. Using this Bayesian methodology, the source-likelihood map is propagated through time and updated in response to both detection and nondetection events. Examples are included that use data from in-water testing to compare the mapping approach derived herein with the map derived using a previously existing technique
Keywords
Bayes methods; biomimetics; chemical sensors; maximum likelihood estimation; oceanography; remotely operated vehicles; turbulence; underwater vehicles; Bayesian inference method; Reynolds number; autonomous vehicle; chemical plume source localization; fluid flow sensing; sensor probe; source-likelihood map estimation problem; vehicle-based chemical plume tracing; Bayesian methods; Chemical sensors; Event detection; Fluid flow; Mobile robots; Position measurement; Probes; Remotely operated vehicles; Testing; Vehicle detection; Autonomous vehicles; Bayesian inference methods; chemical plume tracing; online mapping; online planning; plume source localization;
fLanguage
English
Journal_Title
Systems, Man, and Cybernetics, Part B: Cybernetics, IEEE Transactions on
Publisher
ieee
ISSN
1083-4419
Type
jour
DOI
10.1109/TSMCB.2006.874689
Filename
1703649
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