Radar Tracking Waveform Design in Continuous Space and Optimization Selection Using Differential Evolution

abstract: Waveform design that allows for a wide variety of frequency-modulation (FM) has proven benefits. However, dictionary based optimization is limited and gradient search methods are often intractable. A new method is proposed using differential evolution to design waveforms with instantaneous...

Full description

Bibliographic Details
Other Authors: Paul, Bryan (Author)
Format: Dissertation
Language:English
Published: 2014
Subjects:
Online Access:http://hdl.handle.net/2286/R.I.25100
id ndltd-asu.edu-item-25100
record_format oai_dc
spelling ndltd-asu.edu-item-251002018-06-22T03:05:11Z Radar Tracking Waveform Design in Continuous Space and Optimization Selection Using Differential Evolution abstract: Waveform design that allows for a wide variety of frequency-modulation (FM) has proven benefits. However, dictionary based optimization is limited and gradient search methods are often intractable. A new method is proposed using differential evolution to design waveforms with instantaneous frequencies (IFs) with cubic FM functions whose coefficients are constrained to the surface of the three dimensional unit sphere. Cubic IF functions subsume well-known IF functions such as linear, quadratic monomial, and cubic monomial IF functions. In addition, all nonlinear IF functions sufficiently approximated by a third order Taylor series over the unit time sequence can be represented in this space. Analog methods for generating polynomial IF waveforms are well established allowing for practical implementation in real world systems. By sufficiently constraining the search space to these waveforms of interest, alternative optimization methods such as differential evolution can be used to optimize tracking performance in a variety of radar environments. While simplified tracking models and finite waveform dictionaries have information theoretic results, continuous waveform design in high SNR, narrowband, cluttered environments is explored. Dissertation/Thesis Paul, Bryan (Author) Papandreou-Suppappola, Antonia (Advisor) Bliss, Daniel W (Advisor) Tepedelenlioglu, Cihan (Committee member) Arizona State University (Publisher) Remote sensing Electrical engineering Design Differential Evolution Radar Tracking Waveform eng 96 pages M.S. Electrical Engineering 2014 Masters Thesis http://hdl.handle.net/2286/R.I.25100 http://rightsstatements.org/vocab/InC/1.0/ All Rights Reserved 2014
collection NDLTD
language English
format Dissertation
sources NDLTD
topic Remote sensing
Electrical engineering
Design
Differential
Evolution
Radar
Tracking
Waveform
spellingShingle Remote sensing
Electrical engineering
Design
Differential
Evolution
Radar
Tracking
Waveform
Radar Tracking Waveform Design in Continuous Space and Optimization Selection Using Differential Evolution
description abstract: Waveform design that allows for a wide variety of frequency-modulation (FM) has proven benefits. However, dictionary based optimization is limited and gradient search methods are often intractable. A new method is proposed using differential evolution to design waveforms with instantaneous frequencies (IFs) with cubic FM functions whose coefficients are constrained to the surface of the three dimensional unit sphere. Cubic IF functions subsume well-known IF functions such as linear, quadratic monomial, and cubic monomial IF functions. In addition, all nonlinear IF functions sufficiently approximated by a third order Taylor series over the unit time sequence can be represented in this space. Analog methods for generating polynomial IF waveforms are well established allowing for practical implementation in real world systems. By sufficiently constraining the search space to these waveforms of interest, alternative optimization methods such as differential evolution can be used to optimize tracking performance in a variety of radar environments. While simplified tracking models and finite waveform dictionaries have information theoretic results, continuous waveform design in high SNR, narrowband, cluttered environments is explored. === Dissertation/Thesis === M.S. Electrical Engineering 2014
author2 Paul, Bryan (Author)
author_facet Paul, Bryan (Author)
title Radar Tracking Waveform Design in Continuous Space and Optimization Selection Using Differential Evolution
title_short Radar Tracking Waveform Design in Continuous Space and Optimization Selection Using Differential Evolution
title_full Radar Tracking Waveform Design in Continuous Space and Optimization Selection Using Differential Evolution
title_fullStr Radar Tracking Waveform Design in Continuous Space and Optimization Selection Using Differential Evolution
title_full_unstemmed Radar Tracking Waveform Design in Continuous Space and Optimization Selection Using Differential Evolution
title_sort radar tracking waveform design in continuous space and optimization selection using differential evolution
publishDate 2014
url http://hdl.handle.net/2286/R.I.25100
_version_ 1718700434893307904