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A Low-Complexity Range Estimation with Adjusted Affine Frequency Division Multiplexing Waveform
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Affine frequency division multiplexing (AFDM) is a recently proposed communication waveform for time-varying channel scenarios. As a chirp-based multicarrier modulation technique it can not only satisfy the needs of multiple scenarios in future mobile communication networks but also achieve good performance in radar sensing by adjusting the built-in parameters, making it a promising air interface waveform in integrated sensing and communication (ISAC) applications. In this paper, we investigate an AFDM-based radar system and analyze the radar ambiguity function of AFDM with different built-in parameters, based on which we find an AFDM waveform with the specific parameter c2 owns the near-optimal time-domain ambiguity function. Then a low-complexity algorithm based on matched filtering for high-resolution target range estimation is proposed for this specific AFDM waveform. Through simulation and analysis, the specific AFDM waveform has near-optimal range estimation performance with the proposed low-complexity algorithm while having the same bit error rate (BER) performance as orthogonal time frequency space (OTFS) using simple linear minimum mean square error (LMMSE) equalizer.
Forward citations
Cited by 4 Pith papers
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Metasurfaces-Integrated Doubly-Dispersive MIMO: Channel Modeling and Optimization
A unified doubly-dispersive MIMO channel model with SIM and RIS is derived, and SIM phase optimization is shown to improve BER and radar parameter estimation for OFDM, OTFS, and AFDM.
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An Integrated Sensing and Communications System Based on Affine Frequency Division Multiplexing
An AFDM-based ISAC system with new sensing metrics tolerates Doppler shifts several times larger than OFDM at matched spectral efficiency.
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Doubly-Dispersive MIMO Channels with Stacked Intelligent Metasurfaces: Modeling, Parametrization, and Receiver Design
A doubly-dispersive MIMO channel model parametrized by stacked intelligent metasurfaces and RISs, with optimized surface phases improving BER for OFDM, OTFS, and AFDM.
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Flexible Intelligent Metasurfaces in High-Mobility MIMO Integrated Sensing and Communications
A flexible-intelligent-metasurface-parameterized doubly dispersive MIMO channel model is proposed, and optimizing the surface shape at both link ends is shown by simulation to improve achievable rate and angle-of-arri...
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