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光采样示波器软件同步算法研究

Software Synchronization Algorithm of Optical Sampling Oscilloscope
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摘要 随着高速光通信信号速率的不断提高,电采样示波器所需的带宽也增加了。现有宽带高性能电采样示波器逐渐达到电子瓶颈决定的带宽极限。为了克服电子瓶颈,研制了基于光域采样技术的光采样示波器样机,其中软件同步算法的复杂度决定了样机测试的实时性。在基于啁啾z变换(CZT)的软件同步算法基础上,提出了基于选带傅里叶变换(ZoomFFT)的软件同步算法,进一步降低软件同步复杂度。与基于CZT的软件同步算法相比,基于ZoomFFT的软件同步算法所需实数乘法个数下降了68.8%。利用研制的光采样示波器样机,分别对不同速率的四电平脉冲幅度调制(PAM4)光信号、正交相移键控(QPSK)光信号进行了测量,并以宽带电采样示波器的测量结果进行对比,验证了光采样示波器能自适应地对不同速率的强度调制信号、相位调制信号进行测量。此外,为了表征光采样示波器本底噪声的影响,通过降低被测光通信信号功率,对Q因子进行了测量,结果表明,Q因子下降3 dB对应的灵敏度约为10 dB。 Objective In optical communication,the measurement and analysis of high-speed optical communication signals are essential in developing high-speed optical communication devices,equipment,and systems.At present,the common equipment for time-domain measurement of high-speed optical signals is an optoelectronic hybrid broadband oscilloscope,which has a signal processing circuit limit bandwidth of about 90 GHz and requires complex clock synchronization circuitry.Additionally,this type of oscilloscope also has disadvantages such as opaque signal rate and modulation format,complex system composition,and expensive price.To overcome this electronic bottleneck,we develop an optical sampling oscilloscope prototype based on optical domain sampling technology.The oscilloscope adopts a software synchronization algorithm,and the measurable signal bandwidth is up to THz without the requirement for high-speed photodetectors,which lowers the bandwidth requirements of the clock synchronization circuit and subsequent processing circuits.The limitation of the electronic bottleneck is also overcome.However,since we previously adopt a software synchronization algorithm based on chirped z-transform(CZT),its complexity affects the signal processing timeliness.To improve the signal processing efficiency and enhance the equipment practicability,it is necessary to study a less complex software synchronization algorithm suitable for optical sampling oscilloscopes.Methods Generally,after the optical signal is asynchronously down-frequency optically sampled with a fixed frequency difference,the eye diagram reconstruction algorithm based on software synchronization can be employed to realize parameter measurement of high-speed optical data signals related to the eye diagram recovery,constellation diagram,and signal statistical characteristics(Fig.2).The key to the entire software synchronous eye diagram reconstruction algorithm is to accurately obtain the down-frequency equivalent sampling time step parameterΔt of asynchronous down-frequency optical sampling from the sampled digital signal.To reduce the complexity of software synchronization,based on the CZT software synchronization method proposed by our research group,we put forward a software synchronization method based on the zoom fast Fourier transform(ZoomFFT).The proposed software synchronization algorithm is divided into two steps of coarse synchronization based on FFT and fine synchronization based on ZoomFFT(Figs.4-6).After the FFT coarse synchronization,ZoomFFT is adopted to refine the spectrum near the peak of the amplitude spectrum to obtain a more accurate peak frequency point of the amplitude spectrum.Then a more accurate down-frequency equivalent sampling time step parameterΔt is obtained to realize fine synchronization.Among them,after replacing the low-pass filter in the ZoomFFT transform with time-domain averaging,the computational complexity of ZoomFFT is lower than that of CZT.Results and Discussions First,we measure the four-level pulse amplitude modulation(PAM4)signal and quadrature phase-shift keying(QPSK)signal at different rates through an optical sampling oscilloscope prototype.In the measurement of the PAM4 signal,two rates of 6.259 GBaud and 9.696 GBaud are sent respectively.To compare with the downsampling signal,a high-speed broadband digital sampling oscilloscope with a sampling rate of 50 GSa/s and a bandwidth of 20 GHz is utilized to oversample the two-rate PAM4 signal.The results show that the software synchronous optical sampling oscilloscope can measure the eye diagram which is in good agreement with the oversampling broadband oscilloscope(Figs.8-9).In the measurement of the QPSK signal,two rates of 10 GBaud and 20 GBaud are sent respectively.With the results measured by Agilent's real-time oscilloscope as a comparison,the software synchronous optical sampling oscilloscope can adaptively measure the eye diagram and constellation diagram of the QPSK signal with different symbol rates(Figs.11-12).Meanwhile,we investigate the effect of the background noise in an optical sampling oscilloscope prototype,and the change curve of the Q value is measured by changing the input optical power.The results show that when the Q value decreases by 3 dB,the corresponding input optical power reduces by about 10.3 dB,and the influence of background noise is small(Fig.14).It is worth noting that benefiting from the proposed ZoomFFT-based software synchronization algorithm,the complexity can be greatly reduced.Compared with the CZT algorithm,the complexity is reduced by 68.8%.Conclusions Based on the previous research results of the software synchronization algorithm of the CZT transform,our paper proposes a software synchronization algorithm of the ZoomFFT transform.The experimental results show that the software synchronization algorithm based on ZoomFFT reduces the complexity by 68.8%compared with the CZT algorithm.With the developed optical sampling oscilloscope prototype,the optical PAM4 signals of 6.259 GBaud and 9.696 GBaud rates,and the optical QPSK signals of 10 GBaud and 20 GBaud are measured.The measurement results are compared with those of a broadband electrical sampling oscilloscope with a sampling rate of 50 GSa/s and a bandwidth of 20 GHz.The measurement results verify that the optical sampling oscilloscope can adaptively measure intensitymodulated signals and phase-modulated signals at different rates.Additionally,the effect of the background noise in the optical sampling oscilloscope is investigated.The results demonstrate that when the measured input optical signal power drops by 10.3 dB,the measured Q factor decreases by 3 dB.Thus,the influence of the background noise is small.
作者 杨爱英 赵喆 李谦 Yang Aiying;Zhao Zhe;Li Qian(School of Optics and Photonics,Beijing Institute of Technology,Beijing 100081,China)
出处 《光学学报》 EI CAS CSCD 北大核心 2023年第15期97-106,共10页 Acta Optica Sinica
基金 国家自然科学基金(61427813)。
关键词 光纤通信 采样 眼图 Q因子 optical fiber communication sampling eye diagram Q factor
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