Cross-Domain Dual-Functional OFDM Waveform Design for Accurate Sensing/Positioning

Fan Zhang;Tianqi Mao;Ruiqi Liu;Zhu Han;Sheng Chen;Zhaocheng Wang
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Abstract

Orthogonal frequency division multiplexing (OFDM) has been widely recognized as the representative waveform for 5G wireless networks, which can directly support sensing/positioning with existing infrastructure. To guarantee superior sensing/positioning accuracy while supporting high-speed communication simultaneously, the dual functions tend to be assigned with different resource elements (REs) due to their diverse design requirements. This motivates optimization of resource allocation/waveform design across time, frequency, power and delay-Doppler domains. Therefore, this article proposes two cross-domain waveform optimization strategies for effective convergence of OFDM-based communication and sensing/positioning, following communication- and sensing-centric criteria, respectively. For the communication-centric design, to maximize the achievable data rate, a fraction of REs are optimally allocated for communication according to prior knowledge of the communication channel. The remaining REs are then employed for sensing/positioning, where the sidelobe level and peak-to-average power ratio are suppressed by optimizing its power-frequency and phase-frequency characteristics for sensing performance improvement. For the sensing-centric design, a ‘locally’ perfect auto-correlation property is ensured for accurate sensing and positioning by adjusting the unit cells of the ambiguity function within its region of interest (RoI). Afterwards, the irrelevant cells beyond RoI, which can readily determine the sensing power allocation, are optimized with the communication power allocation to enhance the achievable data rate. Numerical results demonstrate the superiority of the proposed waveform designs.
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用于精确传感/定位的跨域双功能 OFDM 波形设计
正交频分复用(OFDM)已被广泛认为是 5G 无线网络的代表波形,可直接支持现有基础设施的传感/定位功能。为了在支持高速通信的同时保证卓越的传感/定位精度,双重功能往往会因设计要求的不同而分配给不同的资源要素(RE)。这就需要在时间、频率、功率和延迟-多普勒域对资源分配/波形设计进行优化。因此,本文提出了两种跨域波形优化策略,分别遵循以通信为中心和以传感为中心的标准,实现基于 OFDM 的通信和传感/定位的有效融合。在以通信为中心的设计中,为了最大限度地提高可实现的数据传输速率,根据事先对通信信道的了解,将一部分 RE 优化分配用于通信。然后将剩余的 RE 用于传感/定位,通过优化其功率频率和相位频率特性来抑制侧叶电平和峰均功率比,从而提高传感性能。在以传感为中心的设计中,通过调整相关区域(RoI)内模糊函数的单元格,确保 "局部 "完美的自相关特性,从而实现精确的传感和定位。然后,对 RoI 以外的无关单元(可随时确定传感功率分配)进行通信功率分配优化,以提高可实现的数据传输速率。数值结果证明了拟议波形设计的优越性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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Table of Contents IEEE Open Access Publishing Guest Editorial Positioning and Sensing Over Wireless Networks—Part II TechRxiv: Share Your Preprint Research With the World! IEEE Journal on Selected Areas in Communications Publication Information
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