Adaptive Pulse Compression for Sidelobes Reduction in Stretch Processing based MIMO Radars
Hamza Malik, Jehanzeb Burki, Muhammad Zeeshan Mumtaz

TL;DR
This paper introduces an adaptive pulse compression technique using RMMSE filters with phase compensation and sidelobe decoherence for MIMO radars, significantly reducing range sidelobes and improving target detection fidelity.
Contribution
It proposes a novel RMMSE filter design with phase compensation and structured covariance matrix modifications for enhanced sidelobe suppression in MIMO radar systems.
Findings
Superior range sidelobe suppression demonstrated in simulations
Field experiments confirm improved target detection fidelity
Modified covariance matrix enhances sidelobe decoherence
Abstract
Multiple-Input Multiple-Output (MIMO) radars provide various advantages as compared to conventional radars. Among these advantages, improved angular diversity feature is being explored for future fully autonomous vehicles. Improved angular diversity requires use of orthogonal waveforms at transmit as well as receive sides. This orthogonality between waveforms is critical as the cross-correlation between signals can inhibit the detection of weaker targets due to sidelobes of stronger targets. This paper investigates the Reiterative Minimum Mean Squared Error (RMMSE) mismatch filter design for range sidelobes reduction for a Slow-Time Phase-Coded (ST-PC) Frequency Modulated Continuous Wave (FMCW) MIMO radar. Initially, the performance degradation of RMMSE filter is analyzed for improperly decoded received pulses. It is then shown mathematically that proper decoding of received pulses…
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Taxonomy
TopicsRadar Systems and Signal Processing · Advanced SAR Imaging Techniques · Antenna Design and Optimization
