Information–Theoretic Radar Waveform Design under the SINR Constraint
This study investigates the information–theoretic waveform design problem to improve radar performance in the presence of signal-dependent clutter environments. The goal was to study the waveform energy allocation strategies and provide guidance for radar waveform design through the trade-off relati...
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doaj-1832f63fbc4647deb0fed5f3ea095a6f2020-11-25T03:57:44ZengMDPI AGEntropy1099-43002020-10-01221182118210.3390/e22101182Information–Theoretic Radar Waveform Design under the SINR ConstraintYu Xiao0Zhenghong Deng1Tao Wu2School of Automation, Northwestern Polytechnical University, Xi’an 710072, ChinaSchool of Automation, Northwestern Polytechnical University, Xi’an 710072, ChinaEquipment Management and UAV College, Air Force Engineering University, Xi’an 710051, ChinaThis study investigates the information–theoretic waveform design problem to improve radar performance in the presence of signal-dependent clutter environments. The goal was to study the waveform energy allocation strategies and provide guidance for radar waveform design through the trade-off relationship between the information theory criterion and the signal-to-interference-plus-noise ratio (SINR) criterion. To this end, a model of the constraint relationship among the mutual information (MI), the Kullback–Leibler divergence (KLD), and the SINR is established in the frequency domain. The effects of the SINR value range on maximizing the MI and KLD under the energy constraint are derived. Under the constraints of energy and the SINR, the optimal radar waveform method based on maximizing the MI is proposed for radar estimation, with another method based on maximizing the KLD proposed for radar detection. The maximum MI value range is bounded by SINR and the maximum KLD value range is between 0 and the Jenson–Shannon divergence (J-divergence) value. Simulation results show that under the SINR constraint, the MI-based optimal signal waveform can make full use of the transmitted energy to target information extraction and put the signal energy in the frequency bin where the target spectrum is larger than the clutter spectrum. The KLD-based optimal signal waveform can therefore make full use of the transmitted energy to detect the target and put the signal energy in the frequency bin with the maximum target spectrum.https://www.mdpi.com/1099-4300/22/10/1182information–theoreticSINR constraintwaveform optimizationenergy allocation strategiesfrequency domain |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Yu Xiao Zhenghong Deng Tao Wu |
spellingShingle |
Yu Xiao Zhenghong Deng Tao Wu Information–Theoretic Radar Waveform Design under the SINR Constraint Entropy information–theoretic SINR constraint waveform optimization energy allocation strategies frequency domain |
author_facet |
Yu Xiao Zhenghong Deng Tao Wu |
author_sort |
Yu Xiao |
title |
Information–Theoretic Radar Waveform Design under the SINR Constraint |
title_short |
Information–Theoretic Radar Waveform Design under the SINR Constraint |
title_full |
Information–Theoretic Radar Waveform Design under the SINR Constraint |
title_fullStr |
Information–Theoretic Radar Waveform Design under the SINR Constraint |
title_full_unstemmed |
Information–Theoretic Radar Waveform Design under the SINR Constraint |
title_sort |
information–theoretic radar waveform design under the sinr constraint |
publisher |
MDPI AG |
series |
Entropy |
issn |
1099-4300 |
publishDate |
2020-10-01 |
description |
This study investigates the information–theoretic waveform design problem to improve radar performance in the presence of signal-dependent clutter environments. The goal was to study the waveform energy allocation strategies and provide guidance for radar waveform design through the trade-off relationship between the information theory criterion and the signal-to-interference-plus-noise ratio (SINR) criterion. To this end, a model of the constraint relationship among the mutual information (MI), the Kullback–Leibler divergence (KLD), and the SINR is established in the frequency domain. The effects of the SINR value range on maximizing the MI and KLD under the energy constraint are derived. Under the constraints of energy and the SINR, the optimal radar waveform method based on maximizing the MI is proposed for radar estimation, with another method based on maximizing the KLD proposed for radar detection. The maximum MI value range is bounded by SINR and the maximum KLD value range is between 0 and the Jenson–Shannon divergence (J-divergence) value. Simulation results show that under the SINR constraint, the MI-based optimal signal waveform can make full use of the transmitted energy to target information extraction and put the signal energy in the frequency bin where the target spectrum is larger than the clutter spectrum. The KLD-based optimal signal waveform can therefore make full use of the transmitted energy to detect the target and put the signal energy in the frequency bin with the maximum target spectrum. |
topic |
information–theoretic SINR constraint waveform optimization energy allocation strategies frequency domain |
url |
https://www.mdpi.com/1099-4300/22/10/1182 |
work_keys_str_mv |
AT yuxiao informationtheoreticradarwaveformdesignunderthesinrconstraint AT zhenghongdeng informationtheoreticradarwaveformdesignunderthesinrconstraint AT taowu informationtheoreticradarwaveformdesignunderthesinrconstraint |
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