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Interference mitigation for network-level ISAC: An optimization perspective

  • Dongfang Xu
  • , Yiming Xu
  • , Xin Zhang
  • , Xianghao Yu*
  • , Shenghui Song*
  • , Robert Schober
  • *Corresponding author for this work

Research output: Journal Publications and ReviewsRGC 21 - Publication in refereed journalpeer-review

Abstract

Future wireless networks are envisioned to simultaneously provide high data-rate communication and ubiquitous environment-aware services for numerous users. One promising approach to meet this demand is to employ network-level integrated sensing and communications (ISAC) by jointly designing the signal processing and resource allocation over the entire network. However, to unleash the full potential of network-level ISAC, some critical challenges must be tackled. Among them, interference management is one of the most significant ones. In this article, we build up a bridge between interference mitigation techniques and the corresponding optimization methods, which facilitates efficient interference mitigation in network-level ISAC systems. In particular, we first identify several types of interference in network-level ISAC systems, including self-interference, mutual interference, crosstalk, clutter, and multiuser interference. Then, we present several promising techniques that can be utilized to suppress specific types of interference. For each type of interference, we discuss the corresponding problem formulation and identify the associated optimization methods. Moreover, to illustrate the effectiveness of the proposed interference mitigation techniques, two concrete network-level ISAC systems, namely, coordinated cellular network-based and distributed antenna-based ISAC systems, are investigated from an interference management perspective. Experiment results indicate that it is beneficial to collaboratively employ different interference mitigation techniques and leverage the network structure to achieve the full potential of network-level ISAC. Finally, we highlight several promising future research directions for the design of ISAC systems. © 2024 IEEE.
Original languageEnglish
Pages (from-to)28-34
JournalIEEE Communications Magazine
Volume62
Issue number9
Online published3 Sept 2024
DOIs
Publication statusPublished - Sept 2024

Funding

The work of Xianghao Yu was supported by the Hong Kong Research Grants Council under Grant No. 21215423. The work of Shenghui Song was supported by a grant from the NSFC/ RGC Joint Research Scheme sponsored by the Research Grants Council of the Hong Kong Special Administrative Region, China and National Natural Science Foundation of China (Project No. N_HKUST656/22). The work of Robert Schober was supported in part by the Deutsche Forschungsgemeinschaft (DFG, German Research Foundation) GRK 2680 – Project-ID 437847244 and in part by the German Ministry for Education and Research (BMBF) under the program of “Souverän. Digital. Vernetzt.” joint project 6G-RIC (Project-ID 16KISK023).

RGC Funding Information

  • RGC-funded

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