DocumentCode :
3221911
Title :
Belief fusion, pignistic probabilities, and information content in fusing tracking attributes
Author :
Sudano, John J.
Author_Institution :
Lockheed Martin, Moorestown, NJ, USA
fYear :
2004
fDate :
26-29 April 2004
Firstpage :
218
Lastpage :
224
Abstract :
In the design of information fusion systems, the reduction of computational complexity is a key design parameter for real-time implementations. One way to simplify the computations is to decompose the system into subsystems of noncorrelated informational components, such as a qualitative informational component, a quantitative informational component, and a complement informational component. A probability information content (PIC) variable assigns an information content value to any set of system or sub-system probability distributions. The PIC variable is the normalized entropy computed from the probability distribution. This article derives a PIC variable for a subsystem represented by the complement probabilities. This article also derives a relationship between the PIC variable of sub-system components and the system informational PIC variable. A series of pignistic probability transforms are presented that estimate the probability for any belief data set. The generalized belief fusion method of combining independent multi-source beliefs is presented.
Keywords :
belief maintenance; computational complexity; entropy; inference mechanisms; sensor fusion; statistical distributions; PIC variable; computational complexity; generalized belief fusion; independent multi-source beliefs; normalized entropy; pignistic probabilities; pignistic probability transforms; probability information content; sub-system components; system probability distributions; Computational complexity; Decision making; Distributed computing; Entropy; Feature extraction; Multidimensional systems; Probability distribution; Real time systems; Robustness; Sensor systems;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Radar Conference, 2004. Proceedings of the IEEE
Print_ISBN :
0-7803-8234-X
Type :
conf
DOI :
10.1109/NRC.2004.1316425
Filename :
1316425
Link To Document :
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