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HF radar waveform design

Sixth International Conference on `HF Radio Systems and Techniques', 1994
HF over-the-horizon radars often use CW transmissions comprising repeated linear FM sweeps. The resolution and sidelobe performance in the range dimension are determined within each sweep, but Doppler information is extracted by processing together the outputs of a number of sweeps.
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Constant envelope waveform design for MIMO radar

2010 IEEE International Conference on Acoustics, Speech and Signal Processing, 2010
A method for generating constant envelope (CE) waveforms to realise a given covariance matrix for a closely spaced MIMO radar system is proposed. In contrast to available algorithms, the technique provides closed form solutions for finding the required waveforms and suggests that waveforms can be chosen from finite alphabets such as binary-phase shift ...
Sajid Ahmed   +3 more
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On waveform design for MIMO radar with matrix completion

2014 IEEE Global Conference on Signal and Information Processing (GlobalSIP), 2014
In matrix completion based MIMO radars, the data matrix coherence, and consequently the performance of matrix completion depend on the transmit waveforms. It was recently shown that for uniform linear arrays and orthogonal waveforms, the optimal choice for waveforms are white-noise type functions.
Shunqiao Sun, Athina P. Petropulu
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Optimal and robust waveform design for MIMO radars

2009 IEEE International Conference on Acoustics, Speech and Signal Processing, 2009
Waveform design for Target identification and classification in MIMO radar systems has been studied in several recent works. While the previous works considered signal independent noise, here we extend the results to the case where signal-dependent noise, clutter, is also present and then we find the optimum waveform for several estimators differing in
T. Naghibi, Fereidoon Behnia
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Improved design of unimodular waveforms for MIMO radar

Multidimensional Systems and Signal Processing, 2011
zbMATH Open Web Interface contents unavailable due to conflicting licenses.
Shanna Zhuang, Xiaohua Zhu
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Waveform Design for MIMO Radars With Matrix Completion

IEEE Journal of Selected Topics in Signal Processing, 2015
It was recently shown that MIMO radars with sparse sensing and matrix completion (MC) can significantly reduce the volume of data required by MIMO radars for accurate target detection and estimation. In MIMO-MC radars, the subsampled target returns are forwarded by the receive antennas to a fusion center, partially filling a matrix, referred to as the ...
Shunqiao Sun, Athina P. Petropulu
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Classical radar waveform design

2012
The waveform determines the delay-Doppler response of a radar system. From that response, one can derive the radar's range and velocity resolution and their ambiguities. This chapter explains the concept and motivation for pulse compression. It then describes narrow-band signals and their major signal processing and analysis tools - the matched filter ...
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Waveform design for compressively sampled ultrawideband radar

Journal of Electronic Imaging, 2013
Compressive sensing makes it possible to recover sparse target scenes from under-sampled measurements when uncorrelated random-noise waveforms are used as probing signals. The mathematical theory behind this assertion is based on the fact that Toeplitz and circulant random matrices generated from independent identically distributed (i.i.d) Gaussian ...
Mahesh C. Shastry   +2 more
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Joint automotive radar-communications waveform design

2017 IEEE 28th Annual International Symposium on Personal, Indoor, and Mobile Radio Communications (PIMRC), 2017
The paper studies the problem of waveform design for a joint Radar-Communications (RadComms) system in an automotive setting characterized by a multitarget environment. The envisaged joint waveform allows exploitation of existing infrastructure to support additional functionalities.
Sayed Hossein Dokhanchi   +5 more
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Optimal Radar Waveform Design

2014
Abstract A confluence of steady advances in radar enabling technologies, and ever increasing demands on radar performance in challenging environments, has afforded a re-examination of the fundamental theoretical framework upon which classical waveform design is based.
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