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arXiv · 2609.32111

Complementary Waveform Coordination for Doppler-Resilient MIMO Radar

Abstract

Complementary waveform libraries yield impulse-like aggregate delay responses at zero Doppler, but pulse-dependent Doppler phases degrade their sidelobe cancellation. This paper develops a linear-algebraic formulation for coordinating a (D)-ary transmission schedule and slow-time receive weights for paraunitary MIMO waveform libraries. Using a modal decomposition of the CPI ambiguity matrix, prescribed-order Doppler-nulling conditions for the (D-1) nonzero modes are expressed as homogeneous linear constraints on the receive weights for a fixed schedule. This representation gives the SNR-optimal fixed-schedule weights by subspace projection and reduces the remaining design to a discrete schedule search. Degrees-of-freedom and modal-growth analyses relate the design to the CPI length, null order, and waveform dimension. Numerical examples compare the resulting designs with established binary constructions and demonstrate Doppler suppression across the full ambiguity matrix of a four-waveform configuration.

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BibTeXRIS

Maksim Antonik, Wenbing Dang, Ali Pezeshki, Stephen D. Howard, William Moran. 2026-09-26. Complementary Waveform Coordination for Doppler-Resilient MIMO Radar. https://arxiv.org/abs/2609.32111

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