DocumentCode :
3221516
Title :
Matched affine joint subspace detection in remote hyperspectral reconnaissance
Author :
Schaum, Alan P.
Author_Institution :
Naval Res. Lab., Washington, DC, USA
fYear :
2002
fDate :
16-17 Oct. 2002
Firstpage :
13
Lastpage :
18
Abstract :
The GLR (generalized likelihood ratio) test has been invoked for several decades as a prescription for generating target detection algorithms, when limited prior knowledge makes a theoretically ideal test inapplicable. Many popular HSI (hyperspectral imaging) detection algorithms rely ultimately on a GLR justification. However, experience with real-time remotely deployed detection systems indicates that certain heuristic modifications to the classic algorithm suite consistently produce better performance. A new target detection test, based on a Bayesian likelihood ratio (BLR) principle, has been used to explain these results and to define a broader class of detection algorithms. The more general approach facilitates the incorporation of prior beliefs, such as that gleaned from experience in measurement programs. A BLR test has been used to generate a new family of HSI algorithms, called matched affine joint subspace detection (MAJSD). Several examples from this class are described, and their utility is validated by detection comparisons.
Keywords :
Bayes methods; matched filters; maximum likelihood detection; object detection; remote sensing; spectral analysis; Bayesian likelihood ratio; GLR test; HSI; MAJSD; generalized likelihood ratio test; hyperspectral imaging; matched affine joint subspace detection; performance; remote hyperspectral reconnaissance; target detection test; Bayesian methods; Detection algorithms; Hyperspectral imaging; Object detection; Probability density function; Real time systems; Reconnaissance; Sensor systems and applications; Testing; Vectors;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Applied Imagery Pattern Recognition Workshop, 2002. Proceedings. 31st
Print_ISBN :
0-7695-1863-X
Type :
conf
DOI :
10.1109/AIPR.2002.1182249
Filename :
1182249
Link To Document :
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