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Automatic target recognition employing signal compression

Quadratic correlation filters (QCFs) have been used successfully to detect and recognize targets embedded in background clutter. Recently, a QCF called the Rayleigh quotient quadratic correlation filter (RQQCF) was formulated for automatic target recognition (ATR) in IR imagery. Using training image...

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Bibliographic Details
Published in:Applied optics (2004) 2007-07, Vol.46 (21), p.4702-4711
Main Authors: Ragothaman, Pradeep, Mikhael, Wasfy B, Muise, Robert R, Mahalanobis, Abhijit
Format: Article
Language:English
Online Access:Get full text
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Summary:Quadratic correlation filters (QCFs) have been used successfully to detect and recognize targets embedded in background clutter. Recently, a QCF called the Rayleigh quotient quadratic correlation filter (RQQCF) was formulated for automatic target recognition (ATR) in IR imagery. Using training images from target and clutter classes, the RQQCF explicitly maximized a class separation metric. What we believe to be a novel approach is presented for ATR that synthesizes the RQQCF using compressed images. The proposed approach considerably reduces the computational complexity and storage requirements while retaining the high recognition accuracy of the original RQQCF technique. The advantages of the proposed scheme are illustrated using sample results obtained from experiments on IR imagery.
ISSN:1559-128X
DOI:10.1364/AO.46.004702