Search ETDs:

OhioLINK ETD

More Like This

Download Full Text
1.67 MB PDF file

Title
On the Satisfaction of Modulus and Ambiguity Function Constraints in Radar Waveform Optimization for Detection
Author
Patton, Lee Kenneth
Degree
Doctor of Philosophy (PhD), Wright State University, Engineering PhD, 2009.
Committee / Advisors
Brian Rigling PhD (Advisor)
Kefu Xue PhD (Committee Member)
Zhiqiang Wu PhD (Committee Member)
Michael Bryant PhD (Committee Member)
Mark Oxley PhD (Committee Member)
Pages
164p.
Abstract
We consider the design of radar systems that are capable of using knowledge of their interference environment to dynamically design transmit waveforms that afford optimum signal-to-interference-plus-noise ratio while satisfying modulus and ambiguity function constraints. We begin by establishing the inextricable nature of modulus constraints in the waveform optimization problem. We then extend the state of the art in waveform optimization to accommodate these constraints. This is done by solving a secondary optimization problem using the method of alternating projections. We demonstrate that this approach can be a computationally efficient alternative to dynamic programming methods. We then consider the multiple-target detection problem, which is the basis for introducing ambiguity function constraints into the waveform design process. We formulate the waveform optimization problem for several receiver architectures, and solve these problems using sequential quadratic programming and interior point methods. Finally, we address the need for a more computationally tractable approach by considering a number of suboptimal formulations. This includes a novel formulation based on a parametrization of nonlinear frequency modulation.
Subject Headings
Electrical engineering; Engineering
Keywords
radar waveform; waveform optimization; constant modulus constraint; ambiguity function constraints;

Document number: wright1247595193. Bookmark this page as
<http://rave.ohiolink.edu/etdc/view?acc_num=wright1247595193>.