DocumentCode :
1546075
Title :
Finite impulse response utilizing the principle of superposition
Author :
Carter, Scott E. ; Malocha, Donald C.
Author_Institution :
Dept. of Electr. & Comput. Eng., Central Florida Univ., Orlando, FL, USA
Volume :
44
Issue :
2
fYear :
1997
fDate :
3/1/1997 12:00:00 AM
Firstpage :
386
Lastpage :
398
Abstract :
A critical parameter in any finite impulse response (FIR) design is the impulse response length, which must be optimized for the given design specifications in order to reduce the size of the filter. To this end, many design algorithms have been introduced, such as Remez exchange, linear programming, and least mean squares. A new algorithm has been derived that is simple, efficient, and accurate for the design of arbitrary filter specifications and requires fewer computations than many other FIR approaches. This paper provides the definition of the basic functions used for the design process. An overview of the design process is given and the design technique used to design filters with tailored passband and stopband responses to yield a near-optimum time length is presented. This design can be very useful when compensating for the effects of a second transducer or other second order effects in surface acoustic wave (SAW) devices. The effects of monotonically increasing sidelobes on the impulse response length are discussed and illustrated. The addition of arbitrary phase response to the filter design process is discussed. The results of the current FIR approach are discussed and compared with other design techniques.
Keywords :
FIR filters; circuit optimisation; compensation; frequency-domain synthesis; surface acoustic wave filters; FIR filter design; arbitrary filter specifications; design algorithm; frequency domain; impulse response length optimization; monotonically increasing sidelobes; near-optimum time length; phase design; principle of superposition; second order effects; second transducer effects compensation; surface acoustic wave devices; tailored passband response; tailored stopband response; weighted frequency shifted sampling functions; Acoustic transducers; Acoustic waves; Algorithm design and analysis; Design optimization; Finite impulse response filter; Linear programming; Passband; Process design; Surface acoustic wave devices; Surface acoustic waves;
fLanguage :
English
Journal_Title :
Ultrasonics, Ferroelectrics, and Frequency Control, IEEE Transactions on
Publisher :
ieee
ISSN :
0885-3010
Type :
jour
DOI :
10.1109/58.585123
Filename :
585123
Link To Document :
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