DocumentCode :
497685
Title :
Signature-based activity detection based on Bayesian networks acquired from expert knowledge
Author :
Fooladvandi, Farzad ; Brax, Christoffer ; Gustavsson, Per ; Fredin, Mikael
Author_Institution :
Saab Microwave Syst., Training Syst. & Inf. Fusion, Skovde, Sweden
fYear :
2009
fDate :
6-9 July 2009
Firstpage :
436
Lastpage :
443
Abstract :
The maritime industry is experiencing one of its longest and fastest periods of growth. Hence, the global maritime surveillance capacity is in a great need of growth as well. The detection of vessel activity is an important objective of the civil security domain. Detecting vessel activity may become problematic if audit data is uncertain. This paper aims to investigate if Bayesian networks acquired from expert knowledge can detect activities with a signature-based detection approach. For this, a maritime pilot-boat scenario has been identified with a domain expert. Each of the scenario´s activities has been divided up into signatures where each signature relates to a specific Bayesian network information node. The signatures were implemented to find evidences for the Bayesian network information nodes. AIS-data with real world observations have been used for testing, which have shown that it is possible to detect the maritime pilot-boat scenario based on the taken approach.
Keywords :
belief networks; expert systems; marine engineering; pattern recognition; sensor fusion; surveillance; AlS-data; Bayesian network information nodes; civil security domain; expert knowledge; global maritime surveillance capacity; maritime industry; maritime pilot-boat scenario; signature-based activity detection; vessel activity; Bayesian methods; Data security; Humans; Industrial training; Information security; Marine vehicles; Surveillance; Terrorism; Testing; Uncertainty; Bayesian networks; Information fusion; Knowledge elicitation; Maritime situation awareness; Signature-based detection;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Information Fusion, 2009. FUSION '09. 12th International Conference on
Conference_Location :
Seattle, WA
Print_ISBN :
978-0-9824-4380-4
Type :
conf
Filename :
5203779
Link To Document :
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