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Design of optimal correlation filters for hybrid vision systemsResearch is underway at the NASA Johnson Space Center on the development of vision systems that recognize objects and estimate their position by processing their images. This is a crucial task in many space applications such as autonomous landing on Mars sites, satellite inspection and repair, and docking of space shuttle and space station. Currently available algorithms and hardware are too slow to be suitable for these tasks. Electronic digital hardware exhibits superior performance in computing and control; however, they take too much time to carry out important signal processing operations such as Fourier transformation of image data and calculation of correlation between two images. Fortunately, because of the inherent parallelism, optical devices can carry out these operations very fast, although they are not quite suitable for computation and control type operations. Hence, investigations are currently being conducted on the development of hybrid vision systems that utilize both optical techniques and digital processing jointly to carry out the object recognition tasks in real time. Algorithms for the design of optimal filters for use in hybrid vision systems were developed. Specifically, an algorithm was developed for the design of real-valued frequency plane correlation filters. Furthermore, research was also conducted on designing correlation filters optimal in the sense of providing maximum signal-to-nose ratio when noise is present in the detectors in the correlation plane. Algorithms were developed for the design of different types of optimal filters: complex filters, real-value filters, phase-only filters, ternary-valued filters, coupled filters. This report presents some of these algorithms in detail along with their derivations.
Document ID
19910017796
Acquisition Source
Legacy CDMS
Document Type
Conference Paper
Authors
Rajan, Periasamy K.
(Tennessee Technological Univ. Cookeville, TN, United States)
Date Acquired
September 6, 2013
Publication Date
December 1, 1990
Publication Information
Publication: Houston Univ., NASA(ASEE Summer Faculty Fellowship Program, 1990, Volume 2
Subject Category
Electronics And Electrical Engineering
Accession Number
91N27110
Funding Number(s)
CONTRACT_GRANT: NGT-44-005-803
Distribution Limits
Public
Copyright
Work of the US Gov. Public Use Permitted.
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