DocumentCode
2774739
Title
Adaptive transmission radar: the next “wave”?
Author
Guerci, Joseph R. ; Pillai, S. Unnikrishna
Author_Institution
DARPA/SPO, Arlington, VA, USA
fYear
2000
fDate
2000
Firstpage
779
Lastpage
786
Abstract
Recent advances in linear amplifier and arbitrary waveform generation technology have spawned interest in adaptive transmitter systems as a means for both optimizing target signal gain and enhancing ID. In this paper, rigorous theoretical performance bounds are constructively established for the joint transmitter-target-channel-receiver optimization problem in the presence of additive colored noise (ACN), (e.g., interference multipath). For the ACN case, an analytical solution is obtained as an eigenvector (with associated maximum eigenvalue) of a homogeneous Fredholm integral equation of the second type. The kernel function is Hermitian and is obtained from the cascade of the target impulse response with the ACN whitening filter. The, theoretical performance gains achievable over conventional transmitter strategies (e.g., chirp) are presented for various simulation scenarios including interference multipath mitigation. Also discussed, is the potential effectiveness of an optimal discriminating pulse solution for the N-target ID problem that arises naturally from the theory
Keywords
Fredholm integral equations; Hermitian matrices; adaptive radar; eigenvalues and eigenfunctions; multipath channels; radar receivers; radar theory; radar transmitters; target tracking; waveform generators; Hermitian kernel function; adaptive transmission radar; adaptive transmitter systems; additive colored noise; arbitrary waveform generation technology; eigenvector; homogeneous Fredholm integral equation; interference multipath; interference multipath mitigation; joint transmitter-target-channel-receiver optimization problem; linear amplifier; optimal discriminating pulse solution; target impulse response; target signal gain; Adaptive systems; Additive noise; Colored noise; Eigenvalues and eigenfunctions; Integral equations; Interference; Performance gain; Radar; Signal generators; Transmitters;
fLanguage
English
Publisher
ieee
Conference_Titel
National Aerospace and Electronics Conference, 2000. NAECON 2000. Proceedings of the IEEE 2000
Conference_Location
Dayton, OH
Print_ISBN
0-7803-6262-4
Type
conf
DOI
10.1109/NAECON.2000.894993
Filename
894993
Link To Document