用于综合传感与通信的正交时频空间:调查

ArXiv Pub Date : 2024-02-15 DOI:10.48550/arXiv.2402.09637
Eyad Shtaiwi, Ahmed Abdelhadi, Husheng Li, Zhu Han, H. V. Poor
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引用次数: 0

摘要

如欧洲 6G 旗舰项目 Hexa-X 所述,第六代(6G)无线通信系统预计将实现智能、通信、传感、定位和计算的集成。这种集成的一个重要方面是综合传感和通信(ISAC),即传感和通信两个系统使用相同的波形,以应对频谱稀缺的挑战。最近,有人提出了正交时频空间(OTFS)波形,以解决 OFDM 因未来某些无线通信系统中的高多普勒频差而受到的限制。在本文中,我们回顾了用于 ISAC 系统的现有 OTFS 波形,并对未来的研究提出了一些见解。首先,我们介绍了 OTFS 的基本原理和系统模型,并对这一创新技术的核心概念和架构提供了基础性的理解。随后,我们概述了基于 OTFS 的 ISAC 系统框架。我们全面回顾了 OTFS 辅助 ISAC 系统领域的最新研究进展和技术现状,以全面了解当前的格局和进展。此外,我们还对支持 OTFS 的 ISAC 操作和传统 OFDM 进行了全面比较,突出强调了 OTFS 的独特优势,尤其是在高多普勒传播情况下。随后,我们讨论了基于 OTFS 的 ISAC 系统面临的主要挑战,指出了潜在的局限性和缺点。最后,我们提出了未来的研究方向,旨在激发 6G 无线通信领域的进一步创新。
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Orthogonal Time Frequency Space for Integrated Sensing and Communication: A Survey
Sixth-generation (6G) wireless communication systems, as stated in the European 6G flagship project Hexa-X, are anticipated to feature the integration of intelligence, communication, sensing, positioning, and computation. An important aspect of this integration is integrated sensing and communication (ISAC), in which the same waveform is used for both systems both sensing and communication, to address the challenge of spectrum scarcity. Recently, the orthogonal time frequency space (OTFS) waveform has been proposed to address OFDM's limitations due to the high Doppler spread in some future wireless communication systems. In this paper, we review existing OTFS waveforms for ISAC systems and provide some insights into future research. Firstly, we introduce the basic principles and a system model of OTFS and provide a foundational understanding of this innovative technology's core concepts and architecture. Subsequently, we present an overview of OTFS-based ISAC system frameworks. We provide a comprehensive review of recent research developments and the current state of the art in the field of OTFS-assisted ISAC systems to gain a thorough understanding of the current landscape and advancements. Furthermore, we perform a thorough comparison between OTFS-enabled ISAC operations and traditional OFDM, highlighting the distinctive advantages of OTFS, especially in high Doppler spread scenarios. Subsequently, we address the primary challenges facing OTFS-based ISAC systems, identifying potential limitations and drawbacks. Then, finally, we suggest future research directions, aiming to inspire further innovation in the 6G wireless communication landscape.
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