摘要
提出并演示了一个光子辅助的集成雷达和通信系统,该系统利用光子辅助拍频在W波段产生毫米波信号。通过将正交相移键控(QPSK)信号编码到线性调频连续波(LFMCW)雷达信号上,实现了传感和通信波形的集成。一体化波形可以通过去啁啾分离通信信号与雷达感知信号,并通过脉冲压缩实现高分辨率感知。实验结果表明,在91 GHz频段内可实现单目标和双目标检测,感知精度约为2.0 cm。此外,成功实现了W波段下2 m、10 m和50 m传输距离的20 Gbit/s高质量无线通信。该系统还适用于各种成分的一体化波形,为高速通信和高分辨率雷达感知融合提供了有效参考。
Objective With the continuous advancement of wireless communication and information technology,mobile data transmission volume has nearly doubled each year.Simultaneously,the proliferation of access devices and the widespread adoption of emerging technologies such as the Internet of Things(IoT),high-definition live streaming,virtual reality(VR),and augmented reality(AR)have intensified the pressing demand for high-speed communication.Nevertheless,meeting the substantial data transmission requirements remains a formidable challenge given the current communication frequencies and bandwidth limitations.The currently utilized sub-6 GHz frequency band has become relatively congested,while the frequency range spanning from 6 GHz to 300 GHz in the millimeter wave spectrum remains largely untapped,offering an exceptionally abundant spectrum resource.Furthermore,in comparison to the lower microwave frequency bands currently in commercial use,the absolute bandwidth available in the millimeter wave frequencies significantly surpasses that of the lower microwave bands.In recent years,transmission systems combining radar sensing with communication have garnered increasing attention.To mitigate the strain on the limited spectrum resources and reduce power consumption,radar and wireless communication emerge as paramount and pivotal applications within the domain of radio frequency(RF)technology.However,as technology continues to evolve,radar and communication are converging towards integrated design,whereas they are initially developed and designed independently,each catering to their distinct functions and frequency bands.Methods In this study,we presented an experimentally photonics-aided integrated radar and communication system.On the transmission side,the integrated signal was generated by encoding a quadrature phase shift keying(QPSK)signal onto a linear frequency-modulated(LFM)signal in the baseband,with the primary objective of eliminating the need for digitalto-analog conversion(DAC)in the intermediate frequency(IF)band.Subsequently,the joint radar communication(JRC)signal was modulated onto an optical carrier and mixed with another external cavity laser(ECL)to generate the millimeter wave LFM-QPSK signal.The adoption of QPSK encoding ensured a constant envelope for the JRC signal,a crucial aspect of long-distance radar sensing.On the receiving side,a W-band horn antenna(HA)captured a portion of the JRC signal for transmission purposes.This signal was then down-converted to an IF band by using a W-band mixer.Following de-chirping and a series of digital signal processing(DSP)steps,the QPSK signal was recovered.For radar sensing purposes,the echo signal was initially down-converted to the baseband and subsequently processed through a matched filter.Due to the well-preserved cross-correlation characteristics of the original LFM signal in the resulting millimeter wave JRC signal,precise radar synchronization was obtained through pulse compression.Consequently,this system could achieve both high-resolution radar sensing and high-speed communication functions.Results and Discussions We introduce a W-band communication-aware integrated system,and its schematic diagram and algorithmic process are depicted in Fig.2.This system successfully achieves robust communication and sensing capabilities through offline processing at the radar and communication receiver.As shown in Fig.4,employing the dechirping operation at the communication receiver allows us to successfully extract high-quality communication sequence signals from the integrated waveform.Subsequent offline DSP algorithms enable us to achieve communication with a significantly lower error rate than that of the hard decision threshold.As shown in Fig.5(a),(b),and(c),we conduct experiments in different scenarios at distances of 2,10,and 50 m,respectively.When the input power into the PD exceeds−1 dBm,each component of the integrated signal achieves high-quality communication below the hard decision threshold.Additionally,by introducing an extra frequency offset error component,the integrated signal maintains high communication quality,as demonstrated in Fig.5(d),proving the system s robustness.On the radar sensing side,we employ pulse compression techniques to detect single and dual targets with a radar accuracy of approximately 2.0 cm.Figure 7 displays the pulse compression output results for a single target at different distances,while Fig.8 shows the results for dual targets at varying distances.In a word,clear target detection is achieved at the radar end.These experimental results underscore the effectiveness of the proposed W-band communication-aware integrated system.Conclusions In this study,we have proposed and demonstrated a photonics-aided system for joint communication and radar sensing.The baseband signal is achieved by encoding an LFM with a QPSK signal.The orthogonal properties of the LFM signal enable signal demodulation,while pulse compression is utilized for radar detection.Experimental results indicate that,through signal-sharing techniques,we can achieve a distance resolution of 2.0 cm and high-quality transmission at speeds of up to 20 Gbit/s within the 91 GHz frequency band,with transmission distances of up to 50 m.Furthermore,this system allows for flexible signal type adjustments as needed,making it a promising candidate for future millimeter-wave communication applications.
作者
何汶忠
刘家轩
杨雄伟
魏怡
王凯辉
周雯
余建军
He Wenzhong;Liu Jiaxuan;Yang Xiongwei;Wei Yi;Wang Kaihui;Zhou Wen;Yu Jianjun(School of Information Science and Technology,Fudan University,Shanghai 200433,China)
出处
《光学学报》
EI
CAS
CSCD
北大核心
2024年第7期35-43,共9页
Acta Optica Sinica
基金
国家自然科学基金(61835002,61935005,62305067,62375219,62331004)。
关键词
光通信
通信与雷达感知一体化系统
毫米波通信
脉冲压缩
一体化波形
optical communications
joint communication and radar sensing system
millimeter wave communication
pulse compression
integrated waveform