DocumentCode :
1146984
Title :
Phase-Coded Waveforms and Their Design
Author :
Benedetto, John J. ; Konstantinidis, Ioannis ; Rangaswamy, Muralidhar
Volume :
26
Issue :
1
fYear :
2009
Firstpage :
22
Lastpage :
31
Abstract :
The design of radar waveforms has received considerable attention since the 1950s. In 1953, P.M. Woodward (1953; 1953) defined the narrowband radar ambiguity function or, simply, ambiguity function. It is a device formulated to describe the effects of range and Doppler on matched filter receivers. Woodward acknowledged the influence that Shannon\´s communication theory from 1948 had on his ideas; and he explained the relevance of ambiguity in radar signal processing, perhaps best conceived in terms of a form of the uncertainty principle (see the sections "Motivation" and "Ambiguity Functions"). However, in the 50 or so years since Woodward\´s book was published, radar signal processing has used the ambiguity function as an intricate and flexible tool in the design of waveforms to solve diverse problems in radar. In the process, substantial connections were established in mathematics, physics, and other areas of signal processing. As such, we are introducing two new methods, discussed in sections "CAZAC Sequences" and "Aperiodic Simulations".
Keywords :
phase coding; radar signal processing; radar theory; sequences; waveform analysis; CAZAC sequences; aperiodic simulations; communication theory; matched filter receivers; narrowband radar ambiguity function; phase-coded waveforms; radar signal processing; radar waveforms; uncertainty principle; Autocorrelation; Books; Doppler radar; Hardware; Object detection; Radar signal processing; Radar theory; Signal design; Signal resolution; Uncertainty;
fLanguage :
English
Journal_Title :
Signal Processing Magazine, IEEE
Publisher :
ieee
ISSN :
1053-5888
Type :
jour
DOI :
10.1109/MSP.2008.930416
Filename :
4775877
Link To Document :
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