DocumentCode
1460420
Title
Detection by incoherent recombination with partial information
Author
Ricker, D.W. ; Cutezo, A.J.
Author_Institution
Appl. Res. Lab., Pennsylvania State Univ., University Park, PA, USA
Volume
37
Issue
1
fYear
2001
fDate
1/1/2001 12:00:00 AM
Firstpage
242
Lastpage
253
Abstract
Matched filter (MF) detection in spread environments is often seriously degraded by the mismatch between the waveform replica and the composite signal formed by the spreading environment. Typically the spreading is caused by multiple delayed reflections due to scatter extent or multipath especially in shallow water sonar applications. It is possible to recover some detector performance by incoherent summation of weighted MF realizations in a process called incoherent recombining (IR). Several IR strategies for Gaussian data that assume varying amounts of prior scattering function (SF) information are examined, their receiver operating characteristics (ROCs) computed, and compared with those of the unrealizable “prescient” receiver (PR). They include optimally weighted and unweighted versions of the maximum likelihood estimator-correlator (EC), and variations of the “at-least-one” (ALO) detector that examines sequences of MF realizations declaring a detection if at least one threshold is crossed. As might be expected, performance improves with the accuracy of the prior information incorporated in the detector formulation
Keywords
Gaussian channels; electromagnetic wave scattering; filtering theory; matched filters; multipath channels; signal detection; spread spectrum communication; Gaussian data; composite signal; incoherent recombining; incoherent summation; matched filter detection; maximum likelihood estimator-correlator; mismatch; multiple delayed reflections; optimally weighted versions; prior scattering function; shallow water sonar applications; spread environments; spreading; unweighted versions; waveform replica; weighted MF realizations; Degradation; Delay; Infrared detectors; Matched filters; Maximum likelihood detection; Maximum likelihood estimation; Optical computing; Reflection; Scattering; Sonar applications;
fLanguage
English
Journal_Title
Aerospace and Electronic Systems, IEEE Transactions on
Publisher
ieee
ISSN
0018-9251
Type
jour
DOI
10.1109/7.913682
Filename
913682
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