Waveform Design for 6G ISAC Systems Under Full-Duplex Residual Self-Interference
Ning Wei, Aimin Tang, Yin Xu, Wenze Qu

TL;DR
This paper introduces a novel waveform for 6G ISAC systems that mitigates residual self-interference in full-duplex radios, enhancing long-range sensing and multi-target detection.
Contribution
It proposes a dual-power phase-coded pulse integrated into communication frames, with optimized processing and detection algorithms, to improve sensing performance under practical full-duplex limitations.
Findings
Significantly extends maximum detection range.
Enhances multi-target detection capability.
Effectively covers blind range for small RCS targets.
Abstract
In this paper, the waveform design for 6G integrated sensing and communication (ISAC) systems is investigated, with a particular focus on the practical limitations imposed by imperfect full-duplex radios. Under such imperfections, continuous communication waveforms, such as OFDM, suffer from severe full-duplex residual self-interference (RSI) for radar sensing, which significantly restricts the long-range sensing capabilities required by emerging low-altitude wireless networks (LAWN). To address this challenge, we propose a novel time-division ISAC waveform that integrates a specially developed dual-power phase-coded pulse for sensing into the communication frame under full-duplex RSI. Specifically, the dual-power sensing pulse consists of a high-power sequence followed by a low-power sequence, effectively exploiting imperfect full-duplex operations to achieve reliable long-range…
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