DocumentCode :
1130916
Title :
Threshold Boolean filters
Author :
Lee, Ki Dong ; Lee, Yong Hoon
Author_Institution :
Image & Media Lab., GoldStar Co. Ltd., Seoul, South Korea
Volume :
42
Issue :
8
fYear :
1994
fDate :
8/1/1994 12:00:00 AM
Firstpage :
2022
Lastpage :
2036
Abstract :
A class of nonlinear digital filters, called the threshold Boolean filter (TBF), is introduced. The TBF is defined by a Boolean function on the binary domain and is a natural extension of stack filters. Multilevel representations of a TBF corresponding to a Boolean function are derived; a TBF can be represented either as a sum of “local minimum-local maximum” terms or as an adaptive linear combination of ordered input data. It is shown that TBF´s may be neither translation invariant nor scale invariant and that any TBF can be expressed as a linear combination of stack filters. A subclass of TBF´s, called linearly separable (LS) TBF´s, defined by the threshold logic is introduced as a direct extension of weighted-order statistic (WOS) filters. Implementation and design of a TBF and an LS TBF is investigated. The procedure for designing TBF´s (LS TBF´s) is shown to be considerably simpler than designing stack (WOS) filters, and the former can outperform the latter at marginal increase in computational cost. Finally, experimental results are presented to illustrate the performance characteristics of TBF´s and LS TBF´s
Keywords :
Boolean functions; digital filters; filtering and prediction theory; threshold logic; Boolean function; adaptive linear input data; computational cost; experimental results; linearly separable filters; multilevel representations; nonlinear digital filters; ordered input data; performance characteristics; stack filters; threshold Boolean filters; weighted-order statistic filters; Boolean functions; Computational efficiency; Digital filters; Filtering; Finite impulse response filter; IIR filters; Laboratories; Logic; Nonlinear filters; Statistics;
fLanguage :
English
Journal_Title :
Signal Processing, IEEE Transactions on
Publisher :
ieee
ISSN :
1053-587X
Type :
jour
DOI :
10.1109/78.301840
Filename :
301840
Link To Document :
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