Signal design for integrated radar and communication based on NLFM-CPM

被引:1
作者
Jiang M. [1 ]
Liao G. [1 ]
Yang Z. [1 ]
Wang Z. [1 ]
机构
[1] National Key Lab of Radar Signal Processing, Xidian University, Xi'an
来源
Xi Tong Gong Cheng Yu Dian Zi Ji Shu/Systems Engineering and Electronics | 2019年 / 41卷 / 01期
关键词
Continuous phase modulation (CPM); Integrated radar and communication; Nonlinear frequency modulation (NLFM) signal; Performance analysis; Signal design;
D O I
10.3969/j.issn.1001-506X.2019.01.06
中图分类号
学科分类号
摘要
Aiming at high autocorrelation sidelobe existing in using radar signal modulated by communication information to improve communication data rate of radar under low duty cycle pulse transmission, an integrated radar and communication signal format based on nonlinear frequency modulation (NLFM) signal is proposed. At first, by combining the continuous phase modulation (CPM) and the NLFM signal, the model of the NLFM-CPM integrated signal is established. Then, based on the radar autocorrelation performance criterion and the resolution criterion, with the matched filter approach, the impact of the modulation parameters of the integrated signal on radar detection performance is analyzed. Finally, the impact of modulation parameters on communication performance is analyzed. The simulation results show that under the premise of not losing the radar mainlobe energy, range resolution, velocity resolution and maintaining the reliability of communication, the proposed signal can make the autocorrelation sidelobe less than -35 dB. © 2019, Editorial Office of Systems Engineering and Electronics. All right reserved.
引用
收藏
页码:35 / 42
页数:7
相关论文
共 20 条
  • [1] Tavik G.C., Hilterbrick C.L., Evins J.B., Et al., The advanced multifunction RF concept, IEEE Trans. on Microwave Theory & Techniques, 53, 3, pp. 1009-1020, (2005)
  • [2] Quan S., Qian W., Guq J., Et al., Radar-communication integration: an overview, Proc. of the IEEE International Conference on Advanced Infocomm Technology, pp. 98-103, (2015)
  • [3] Takahara H., Ohno K., Itami M., A study on UWB radar assisted by inter-vehicle communication for safety applications, Proc. of the IEEE International Conference on Vehicular Electronics and Safety, pp. 99-104, (2012)
  • [4] Han L., Wu K., 24-GHz integrated radio and radar system capable of time-agile wireless communication and sensing, IEEE Trans. on Microwave Theory & Techniques, 60, 3, pp. 619-631, (2012)
  • [5] Mishra A.K., Inggs M., FOPEN capabilities of commensal radars based on whitespace communication systems, Proc. of the IEEE International Conference on Electronics, Computing and Communication Technologies, pp. 1-5, (2014)
  • [6] Hassanien A., Amin M.G., Zhang Y.D., Et al., Dual-function radar-communications: information embedding using sidelobe control and waveform diversity, IEEE Trans. on Signal Processing, 64, 8, pp. 2168-2181, (2016)
  • [7] Mccormick P.M., Blunt S.D., Metcalf J.G., Simultaneous radar and communications emissions from a common aperture, Part I: theory, Proc. of the Radar Conference, pp. 1685-1690, (2017)
  • [8] Takase H., Shinriki M., A dual-use radar and communication system with complete complementary codes, Proc. of the Radar Symposium, pp. 1-4, (2014)
  • [9] Han X.H.Y., Bao L.L., Yang R.J., Performance analysis of radar and communication signals sharing based on OFDM, Journal of Air Force Early Warning Academy, 4, pp. 270-274, (2013)
  • [10] Liu Y.J., Liao G.S., Yang Z.W., Et al., A super-resolution design method for integration of OFDM radar and communication, Journal of Electronics and Information Technology, 38, 2, pp. 425-433, (2016)