Integrated Sensing and Communication Interference Management: Recent Advances and Future Trends

被引:0
|
作者
Wei Z. [1 ]
Niu Y. [1 ]
Wang Y. [1 ]
Pan C. [2 ]
Ma L. [2 ]
机构
[1] Key Laboratory of Universal Wireless Communications(Ministry of Education), Beijing University of Posts and Telecommunications, Beijing
[2] China Mobile Research Institute, Beijing
关键词
Functional integration; Integration of sensing and communication; Interference management; Resource sharing;
D O I
10.13190/j.jbupt.2022-125
中图分类号
学科分类号
摘要
The integrated sensing and communication (ISAC) technology has the potential to support the development of digitization, networking, and intellectualization of the sixth generation of mobile communications systems. ISAC technology faces many challenges, including mutual interference cancellation, and the requirement of more flexible and efficient interference avoidance and interference utilization methods, when the sensing subsystem and the communication subsystem cooperate mutually. First, the necessity of interference management in the ISAC technology is introduced. Then, the interference elimination methods are reviewed from three paradigms of the ISAC technology, and the feasible methods to realize the vision of interference avoidance and interference utilization are presented. Finally, we present some open problems in the field of ISAC interference management. © 2022, Editorial Department of Journal of Beijing University of Posts and Telecommunications. All right reserved.
引用
收藏
页码:31 / 39and88
页数:3957
相关论文
共 52 条
  • [1] YAN S, PENG M G, WANG W B., Integration of communication, sensing and computing: the vision and key technologies of 6G, Journal of Beijing University of Posts and Telecommunications, 44, 4, pp. 1-11, (2021)
  • [2] Network 2030: a blueprint of technology, applications and market drivers towards the year 2030 and beyond
  • [3] KINNEY S., Update on global 5G spectrum auctions
  • [4] GLOVER J., Statement: award of the 2. 3 and 3. 4 GHz spectrum bands
  • [5] LUAN N, XIONG K, ZHANG Y, Et al., 6G: typical applications, key technologies and challenges, Chinese Journal on Internet of Things, 6, 1, pp. 29-43, (2022)
  • [6] FCC proposes innovative small cell use in 3. 5 GHz band
  • [7] An assessment of the near-term viability of accommodating wireless broadband systems in the 1 675~1 710 MHz, 1 755~1 780 MHz, 3 500~3 650 MHz, and 4 200~4 220 MHz, 4 380~4 400 MHz bands (president's spectrum plan report) [EB/OL]
  • [8] DANIELS R C, YEH E R, HEATH R W., Forward collision vehicular radar with IEEE 802.11: feasibility demonstration through measurements, IEEE Transactions on Vehicular Technology, 67, 2, pp. 1404-1416, (2018)
  • [9] YANG C C, SHAO H R., WiFi-based indoor positioning, IEEE Communications Magazine, 53, 3, pp. 150-157, (2015)
  • [10] KHAWAR A, ABDELHADI A, CLANCY T C., A mathematical analysis of cellular interference on the performance of S-band military radar systems, 2014 Wireless Telecommunications Symposium, pp. 1-8, (2014)