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NASA NTRS · 20060044012

Neural network post-processing of grayscale optical correlator

Abstract

In this paper we present the use of a radial basis function neural network (RBFNN) as a post-processor to assist the optical correlator to identify the objects and to reject false alarms. Image plane features near the correlation peaks are extracted and fed to the neural network for analysis. The approach is capable of handling large number of object variations and filter sets. Preliminary experimental results are presented and the performance is analyzed.

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BibTeXRIS

Lu, Thomas T, Hughlett, Casey L., Zhoua, Hanying, Chao, Tien-Hsin, Hanan, Jay C.. 2005-08-04. Neural network post-processing of grayscale optical correlator. https://ntrs.nasa.gov/citations/20060044012

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