CONTROL DEVICE, COMPENSATION DEVICE, OPTICAL RECEIVING DEVICE, OPTICAL COMMUNICATION SYSTEM, PROGRAM, AND CONTROL METHOD

JPWO2024261987A5Active Publication Date: 2025-05-27MEIJI UNIV +1
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Patent Information

Application Number
JP2024554245
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2023-06-22
Publication Date
2025-05-27
Estimated Expiration
2043-06-22

AI Technical Summary

Technical Problem

Optical transmission characteristics are deteriorated by phase noise and polarization fluctuations in coherent optical communication systems due to nonlinear effects and fast polarization changes, which can lead to code errors and system inefficiencies.

Method used

A control device and method that compensates for birefringence and polarization mode dispersion using a finite impulse response filter, adjusting the update frequency or interval of tap coefficients based on polarization fluctuation detection, and employs an optical delay interferometer to detect and measure phase noise and polarization fluctuations accurately.

Benefits of technology

Improves the operational efficiency and maintenance of optical transmission systems by accurately evaluating and compensating for phase noise and polarization fluctuations, reducing errors and enhancing system performance.

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Abstract

A control device that controls the operation of a compensation device that compensates for birefringence and / or polarization mode dispersion experienced by signal light propagated through an optical transmission path by digital signal processing using a finite impulse response filter includes a detection signal receiving unit that receives a detection signal that is a signal indicating a detection result of a detection device that optically detects polarization fluctuations in the optical transmission path, and a setting unit that determines a setting related to an update frequency or update interval of the number of taps of the finite impulse response filter, or an update frequency or update interval of the tap coefficients of the finite impulse response filter, based on the detection result of the detection device.
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Description

[Technical field]

[0001] The present invention relates to a control device, a compensation device, an optical receiving device, an optical communication system, a program, and a control method. [Background technology]

[0002] Non-Patent Documents 1 to 5 disclose that optical transmission characteristics are degraded due to the occurrence of phase noise in signal light via, for example, the Kerr effect. Non-Patent Document 6 discloses that optical phase noise from which the 1 / f noise component is removed as disclosed in Non-Patent Document 7 is derived by subtracting the moving average value of the optical phase from the phase of the measured received signal. Non-Patent Documents 8 and 9 disclose demodulation of a DPSK signal using a delay interferometer. Non-Patent Documents 10 to 12 disclose that the input / output characteristics of an optical ring resonator are steeper than those of an optical delay interferometer.

[0003] Non-Patent Documents 13 and 14 disclose that in coherent optical communication systems, high-speed polarization fluctuations of about 10 kHz or more may occur. Non-Patent Document 15 discloses that there is a proportional relationship between the value of the voltage applied to the fiber stretcher and the values ​​of the lateral pressure and birefringence generated.

[0004] Non-patent documents 16 to 18 disclose coherent optical communication systems using FIR filters. Non-patent document 19 discloses that the maximum speed of polarization fluctuation occurring in an actual optical fiber transmission line is about 45,000 rotations / s in terms of the movement angle of the trajectory on the Poincaré sphere. Non-patent documents 20 and 21 disclose that in an intensity modulation-direct detection system, the delay time of a transponder that performs optical reception, identification and regeneration, and optical transmission is 4 to 30 ns.

[0005] (Prior art document) (Non-Patent Literature) (Non-Patent Document 1) J. P. Gordon and L. F. Mullenauer, "Phase noise in photonic communications systems using linear amplifiers," Optics Letters, Vol. 15, No. 23, pp. 1351-1353, 1990. (Non-Patent Document 2) S. Ryu, "Signal linewidth broadening due to nonlinear Kerr effect in long-haul coherent systems using cascaded optical amplifiers," IEEE Journal of Lightwave Technology, Vol. 10, No. 10, pp. 1450-1457, 1992. (Non-Patent Document 3) J. Cheng et al., "Relative phase noise induced impairment in M-ary phase shift-keying coherent optical communication system using distributed fiber Raman amplifier," Optics Letters, Vol. 38, No. 7, pp. 1055-1057, 2013. (Non-Patent Document 4) S. Zhang et al., "Bit-error rate performance of coherent optical M-ary PSK / QAM using decision-aided maximum likelihood phase estimation," Optics Express, Vol. 18, No. 12, pp. 12088-12103, 2010. (Non-Patent Document 5) T. Pfau et al., "Hardware-efficient coherent digital receiver concept with feedforward carrier recovery for M-QAM constellations," IEEE Journal of Lightwave Technology, Vol. 27, No. 8, pp. 989-999, 2009. (Non-Patent Document 6) M. Nakazawa et al., Editor, High spectral density optical communication technologies, Springer-Verlag, 2010. (Non-Patent Document 7) K. Kikuchi, "Effect of 1 / f-type FM noise on semiconductor-laser linewidth residual in high-power limit," IEEE Journal of Quantum Electronics, Vol. 25, No. 4, pp. 684-688, 1989. (Non-Patent Document 8) J. Gamet and G. Pandraud, "C- and L-band planar delay interferometer for DPSK decoders," IEEE Photonics Technology Letters, Vol. 17, No. 6, pp. 1217-1219, 2005. (Non-Patent Document 9) K. Voigt et al., "Performance of 40-Gb / s DPSK demodulator in SOI-technology," IEEE Photonics Technology Letters, Vol. 20, No. 8, pp. 614-616, 2008. (Non-Patent Document 10) T. Kominato at al., "Ring resonators composed of GeO2-doped silica waveguides," IEEE Journal of Lightwave Technology, Vol. 10, No. 12, pp. 1781-1788, 1992. (Non-Patent Document 11) S. Suzuki et al., "Integrated-optic double-ring resonators with a wide free spectral range of 100 GHz," IEEE Journal of Lightwave Technology, Vol. 13, No. 8, pp. 1766-1771, 1995. (Non-patent document 12) W. Bogaerts et al., "Silicon microring resonators," Laser and Photonics Reviews, Vol. 6, No. 1, pp. 47-73, 2012. (Non-Patent Document 13) PM Krummrich, E.-D. Schmidt, W. Weiershausen, and A. Mattheus, "Field trial results on statistics of fast polarization changes in long haul WDM transmission systems," OFC2005, paper OThT6, March 2005. (Non-Patent Document 14) M. Boroditsky, M. Brodsky, NJ Frigo, P. Magill, and H. Rosenfeldt, "Polarization dynamics in installed fiberoptic systems," 2005 IEEE LEOS Annual Meeting, paper TuCC1, October 2005. (Non-Patent Document 15) R. Ulrich and A. Simon, "Polarization optics of twisted single-mode fibers," Applied Optics, Vol. 18, No. 13, pp. 2241-2251, July 1979. (Non-Patent Document 16) K. Kikuchi, "Digital coherent optical communication systems: fundamentals and future prospects," IEICE Electronics Express, Vol.8, No.20, 1642-1662, 2011. (Non-Patent Document 17) C. Fougstedt, P. Johannisson, L. Svensson, and P. Larsson-Edefors, "Dynamic equalizer power dissipation optimization," OFC2016, paper W4A.2, 2016. (Non-Patent Document 18) D. Cardenas, D. Lavery, P. Watts and SJ Savory, "Reducing the power consumption of the CMA equalizer update for a digital coherent receiver," OFC2014, paper Th4D.5, 2014. (Non-Patent Document 19) PM Krummrich and K. Kotten, "Extremely fast (microsecond timescale) polarization changes in high speed long haul WDM transmission systems," OFC2004, paper FI3, 2004. (Non-Patent Document 20) M. Freiberger, D. Templeton, and E. Mercado, "Low latency optical services," OFC / NFOEC 2012, paper NTu2E.1, 2012. (Non-Patent Document 21) V. Bobrovs, S. Spolitis, and G. Ivanovs, "Latency causes and reduction in optical metro networks," Proc. of SPIE Vol. 9008, 9008-11, 2014. General disclosure

[0006] In a first aspect of the present invention, a control device is provided. The control device controls, for example, the operation of a compensation device for signal light propagated through an optical transmission line. In the control device, the compensation device compensates, for example, for birefringence and / or polarization mode dispersion received by the signal light propagated through the optical transmission line by digital signal processing using a finite impulse response filter. The control device includes, for example, a detection signal receiving unit that receives a detection signal that is a signal indicating a detection result of a detection device that optically detects polarization fluctuation in the optical transmission line. The control device includes, for example, a setting unit that determines a setting related to an update frequency or update interval of the number of taps of the finite impulse response filter, or an update frequency or update interval of the tap coefficients of the finite impulse response filter, based on the detection result of the detection device.

[0007] In any of the above control devices, the setting unit may determine whether or not an absolute value of the amount of fluctuation in polarization fluctuation is greater than a predetermined threshold based on a detection result of the detection device. When it is determined that the absolute value of the amount of fluctuation in polarization fluctuation is greater than the threshold, the setting unit may decide to (i) increase the set value of the update frequency of the number of taps and / or the tap coefficients from a current set value, (ii) set the set value of the update frequency of the number of taps and / or the tap coefficients to a predetermined first value, (iii) decrease the set value of the update interval of the number of taps and / or the tap coefficients from a current set value, or (iv) set the set value of the update interval of the number of taps and / or the tap coefficients to a predetermined second value.

[0008] In any of the above control devices, the setting unit may determine whether or not an absolute value of the fluctuation amount of the polarization fluctuation is greater than a predetermined threshold value based on a detection result of the detection device. When it is not determined that the absolute value of the fluctuation amount of the polarization fluctuation is greater than the threshold value, the setting unit may decide to (i) make the set value of the update frequency of the number of taps and / or the tap coefficients smaller than the current set value, (ii) set the set value of the update frequency of the number of taps and / or the tap coefficients to a predetermined third value, (iii) make the set value of the update interval of the number of taps and / or the tap coefficients larger than the current set value, or (iv) set the set value of the update interval of the number of taps and / or the tap coefficients to a predetermined fourth value.

[0009] Any of the above control devices may include an update unit that updates the number of taps or the tap coefficients at an update frequency or update interval determined by the settings determined by the setting unit.

[0010] In any of the above control devices, the compensation device may compensate for birefringence and / or polarization mode dispersion experienced by the first signal light propagated through the optical transmission line. In any of the above control devices, the detection device may optically detect polarization fluctuation of the second signal light propagated through the optical transmission line. The first signal light and the second signal light may have different wavelengths. In any of the above control devices, the detection device may include an optical delay interferometer, a polarimeter, a polarization state measurement device, or a Stokes parameter measurement device for optically detecting polarization fluctuation of the second signal light.

[0011] Any of the above control devices may control the operation of the multiple compensation devices. Each of the multiple compensation devices compensates for birefringence and / or polarization mode dispersion experienced by each of the multiple signal lights propagating through the optical transmission line by digital signal processing using a finite impulse response filter. Each of the multiple signal lights may have a different wavelength. In any of the above control devices, the setting unit may determine settings for the multiple finite impulse response filters arranged in the multiple compensation devices based on the detection result of the detection device.

[0012] In a second aspect of the present invention, there is provided a compensation device. The compensation device, for example, compensates for birefringence and / or polarization mode dispersion suffered by signal light propagated through an optical transmission line. The compensation device, for example, includes a finite impulse response filter for compensating for the birefringence and / or polarization mode dispersion suffered by the signal light. The compensation device, for example, includes any one of the control devices according to the first aspect.

[0013] In a third aspect of the present invention, there is provided a compensation device. The compensation device, for example, compensates for birefringence and / or polarization mode dispersion received by signal light propagated through an optical transmission line. The compensation device, for example, includes a finite impulse response filter for compensating for the birefringence and / or polarization mode dispersion received by the signal light. The compensation device, for example, includes a control signal input unit to which a control signal for controlling an update frequency or update interval of the number of taps of the finite impulse response filter, or an update frequency or update interval of the tap coefficients of the finite impulse response filter is input.

[0014] Any of the compensation devices described above may include a setting unit that determines, during operation of the compensation device, a setting related to an update frequency or an update interval of the number of taps of the finite impulse response filter, or an update frequency or an update interval of the tap coefficients of the finite impulse response filter, based on a control signal input to the control signal input unit during operation of the compensation device.

[0015] In a fourth aspect of the present invention, there is provided an optical receiving device. The optical receiving device includes, for example, any of the compensation devices according to the second or third aspect. The optical receiving device includes, for example, a demodulator that demodulates a received signal transmitted by a signal light based on an output from the compensation device to generate an information signal.

[0016] In a fifth aspect of the present invention, there is provided an optical communication system. The optical communication system includes, for example, an optical transmitting device that transmits signal light. The optical communication system includes, for example, any one of the optical receiving devices according to the fourth aspect.

[0017] In a sixth aspect of the present invention, a control method is provided. The control method is, for example, a method for controlling the operation of a compensation device for signal light propagated through an optical transmission line. In the control method, the compensation device compensates for birefringence and / or polarization mode dispersion received by the signal light propagated through the optical transmission line by digital signal processing using a finite impulse response filter. The control method includes, for example, a detection signal receiving step of receiving a detection signal that is a signal indicating a detection result of a detection device that optically detects polarization fluctuation in the optical transmission line. The control method includes, for example, a setting step of determining a setting related to an update frequency or update interval of the number of taps of a finite impulse response filter, or an update frequency or update interval of the tap coefficients of a finite impulse response filter, based on the detection result of the detection device.

[0018] In a seventh aspect of the present invention, a program is provided. The program is, for example, a program for making a computer function as any of the control devices according to the first aspect. The program is, for example, a program for making a computer execute the control method according to the sixth aspect. A computer-readable storage medium storing the program may be provided. The storage medium may be a non-transitory computer-readable medium.

[0019] The above summary of the invention does not list all of the necessary features of the present invention. Also, subcombinations of these features may also be inventions. [Brief description of the drawings]

[0020] [Figure 1] 1 illustrates an example of a system configuration of a communication system 100. [Diagram 2] 2 shows an example of an internal configuration of the signal processing unit 170. [Diagram 3] 2 shows an example of a system configuration of a phase noise evaluation apparatus 320. [Figure 4] 2 shows an example of the internal configuration of an optical delay interferometer 340. [Diagram 5] 5 shows an example of the internal configuration of an optical delay interferometer 540. [Figure 6] 6 shows an example of the internal configuration of an optical delay interferometer 640. [Figure 7] 2 shows an example of an internal configuration of the signal processing unit 370. [Figure 8] 8 shows an example of a system configuration of a phase noise evaluation apparatus 820. [Figure 9] 8 shows an example of the internal configuration of the signal processing unit 870. [Figure 10] 1 shows an example of the internal configuration of an optical delay interferometer 1040. [Figure 11] 11 shows an example of the internal configuration of an optical delay interferometer 1140. [Figure 12]12 shows an example of the internal configuration of an optical delay interferometer 1240. [Figure 13] 13 shows an example of the internal configuration of an optical delay interferometer 1340. [Figure 14] 13 shows an example of a circuit configuration of a balanced optical receiver 1350. [Figure 15] 15 shows an example of the internal configuration of an optical delay interferometer 1540. [Figure 16] 16 illustrates an example of a system configuration of a communication system 1600. [Figure 17] 2 shows an example of an internal configuration of an optical signal transmitting device 110. [Figure 18] 16 shows an example of the internal configuration of a status monitor 1680. [Figure 19] 18 shows an example of an internal configuration of a signal processing unit 1870. [Figure 20] 16 illustrates an example of information processing in the status monitor 1680. [Figure 21] An example of a data table 2100 is shown diagrammatically. [Figure 22] An example of the system configuration of a computer 3000 is shown in schematic form. [Figure 23] 1 shows the measurement results of Stokes parameters in Experimental Example 1. [Figure 24] 13 shows a histogram of differential phase in Experimental Example 1. [Diagram 25] 4 shows the time variation of the differential phase in Experimental Example 1. [Figure 26] 4 shows a frequency spectrum of a differential phase in Experimental Example 1. [Figure 27] 1 shows the measurement results of Stokes parameters in Comparative Experimental Example 1. [Figure 28] 13 shows a histogram of the differential phase in Comparative Experimental Example 1. [Figure 29] 13 shows the time variation of the differential phase in Comparative Experimental Example 1. [Diagram 30] 13 shows a frequency spectrum of a differential phase in Comparative Experimental Example 1. [Diagram 31]1 shows the measurement results of Stokes parameters in Experimental Example 2. [Diagram 32] 13 shows a histogram of the differential phase in Experimental Example 2. [Diagram 33] 13 shows the time variation of the differential phase in Experimental Example 2. [Diagram 34] 13 shows a frequency spectrum of a differential phase in Experimental Example 2. [Diagram 35] 3 illustrates an example of a system configuration of a communication system 3500. [Diagram 36] 3 shows an example of the internal configuration of a digital signal processor 3560. [Figure 37] 13 shows an example of an internal configuration of the compensation unit 3664. [Figure 38] 13 illustrates an example of information processing in the compensation unit 3664. [Figure 39] 13 is a schematic diagram showing another example of the internal configuration of the compensation unit 3664. [Diagram 40] 4 shows an example of the internal configuration of a state monitor 4080. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS

[0021] The present invention will be described below through the embodiments of the invention, but the following embodiments do not limit the invention according to the claims. In addition, not all of the combinations of features described in the embodiments are necessarily essential to the solution of the invention. In addition, in the drawings, the same reference numbers are used for the same or similar parts, and duplicate explanations may be omitted.

[0022] In an optical transmission system, phase fluctuations such as optical phase noise and polarization fluctuations may occur in a received signal. Causes of phase fluctuations in a received signal include nonlinear optical effects, vibrations of optical fibers, twisting of optical fibers, fluctuations in stress applied to optical fibers, laser linewidth or laser phase fluctuations, and phase fluctuations in an optical field caused by lightning. Depending on the state of the optical phase fluctuation, code errors may occur in the optical transmission system. An example of an optical transmission system is an optical transmission system that employs a coherent optical communication method.

[0023] According to this embodiment, for example, (i) an apparatus or method for evaluating the presence and / or degree of optical phase noise, (ii) an apparatus or method for evaluating the presence and / or degree of polarization fluctuation, and (iii) an apparatus or method for evaluating the presence and / or degree of optical phase noise and polarization fluctuation are described. According to this embodiment, the presence or absence of at least one of optical phase noise and polarization fluctuation, and / or the degree of at least one of optical phase noise and polarization fluctuation can be evaluated with relatively high accuracy. This can improve the operation efficiency, maintenance efficiency, etc. of the optical transmission system.

[0024] (I. Measurement Principle of Optical Phase Noise) First, the measurement principle of optical phase noise will be described. Details of an apparatus and method for measuring optical phase noise based on the above measurement principle will be described later with reference to FIGS.

[0025] Conventionally, optical phase noise (sometimes simply called phase noise) has been estimated by linearly approximating the fluctuation of the optical phase with respect to time t. For example, when the phase of a signal light propagating through an optical transmission line is measured, the measured value of the phase of the signal light at the i-th (i is an integer between 1 and N) sampling point among N (N is a positive integer) sampling points (sometimes called samples) is approximated using the following Equation 1. (Formula 1)

number

[0026] For example, by determining the constants a and b in advance by the least squares method, the phase noise θ(i) can be estimated from the measured value of the phase of the signal light. However, since the frequency fluctuation of the laser actually includes a low-frequency component fluctuation (sometimes called a 1 / f noise component), the value of the phase noise θ(i) cannot be accurately estimated using the above approximate formula 1.

[0027] As described in Non-Patent Document 6, the optical phase noise from which the 1 / f noise component has been removed can be derived by subtracting the moving average value of the optical phase from the phase of the measured received signal. Specifically, the phase noise θ(i) is derived using the following Equation 2. In Equation 2, m and l represent integers. The value of l is set appropriately. (Formula 2)

number

[0028] However, it is known that phase noise is a Wiener process, and follows a Gaussian distribution in which the variance diverges in proportion to time t. Therefore, the method described in Non-Patent Document 6 has problems such as the variance becoming negative when time t is short, and the inability to accurately determine the approximation curve due to the influence of measurement errors.

[0029] According to one example of the present embodiment, the statistical distribution of the differential phase can be evaluated to more accurately evaluate the effect of nonlinear phase noise on the transmission of an optical signal. Examples of nonlinear phase noise include (i) the self-phase modulation phenomenon, (ii) the cross-phase modulation phenomenon, and (iii) a phenomenon in which the intensity noise of pump light generates phase noise in signal light via the Kerr effect in a fiber Raman amplifier.

[0030] The differential phase means the phase difference before and after a sampling point (sometimes called a sample). The differential phase φ at the i-th sampling point diff (i) is expressed as the following equation 3. (Formula 3)

number

[0031] For example, the sampling frequency is set to the same value as the symbol rate, and the differential phase is measured at the same time interval as the symbol time, thereby deriving the variance or standard deviation of the phase noise in one symbol time. The setting of the sampling frequency is not limited to the above embodiment. For example, the sampling frequency is set to be equal to or higher than the symbol rate. In this case, the differential phase can be measured at the same time interval as the symbol time by calculating the differential phase using samples corresponding to an appropriate time interval. The time interval between samples adjacent in time (for example, the time interval between the i+1th sample and the ith sample) may be referred to as the sample time interval Δt.

[0032] For example, in coherent heterodyne detection, the phase noise θ(t) is expressed as S (t) and the phase φ of the local oscillator light (sometimes called local light). L Using (t), θ(t) = φ S (t)-φ L (t). The phase noise that occurs in the optical transmission line is expressed as φ S Since θ(t) is included in (t), the above equation indicates that θ(t) also includes phase noise occurring in the optical transmission line.

[0033] When the optical signal is not modulated for communication, the phase component at the i-th sampling point is derived by the following Equation 4. (Formula 4)

number

[0034] On the other hand, if the optical signal is modulated for communication, the phase component at the i-th sample point can be calculated by eliminating the modulated component. For example, in the case of M-ary phase modulation, the modulated component can be eliminated by calculating the Mth power of the received signal, where M is a positive integer.

[0035] For example, in the case of a QPSK modulated optical signal, the received signal I QPSK(t) is expressed by the following equation 5. (Formula 5) I QPSK (t)=i I,QPSK (t)+ji Q,QPSK (t) In the above formula, i I,QPSK (t) shows the output current corresponding to the I signal component obtained by coherent heterodyne detection of the QPSK modulated optical signal. Q,QPSK (t) indicates the output current corresponding to the Q signal component obtained by coherent heterodyne detection of the QPSK modulated optical signal.

[0036] Here, since QPSK modulation is a quadrature phase shift keying method, the received signal I QPSK Raising (t) to the fourth power gives the received signal I QPSK The following equation 6 holds between the fourth power of (t) and the phase noise θ(t). (Formula 6) arg{I QPSK (t)} 4 =4(2πf c t+θ(t) In the above formula, f c is the angular frequency of the signal light, f s and the angular frequency of the local light f L Difference from (f s -f L ) and is called the beat frequency.

[0037] By dividing both sides of equation 6 by 4 (corresponding to M above), the following equation 7 is derived. This derives the phase noise θ(t) from which the modulation component has been removed. (Formula 7) arg{I QPSK (t)} 4 / 4=2πf c t+θ(t)

[0038] Considering Equation 1 and Equation 7, the differential phase φ at the i-th sampling point is diff The relationship between (i), the phase noise θ(i+1) at the (i+1)th sampling point, the phase noise θ(i) at the i-th sampling point, and the sample time interval Δt is expressed by the following equation 8. (Formula 8)

number

[0039] As mentioned above, the phase noise θ(i) follows a Gaussian distribution, so the difference between them, the differential phase φ diff (i) also follows a Gaussian distribution. The average value of θ(i) is 0. Therefore, the differential phase φ diff The average value of (i) is 2πfcΔt, and the standard deviation of the phase noise of the signal light θ(i) is σ sig Then, the differential phase φ diff Variance σ of (i) M 2 is 2×σ sig 2 It becomes.

[0040] Therefore, the differential phase φ diff Standard deviation σ of the measurement results in (i) M Once this is derived, the standard deviation of the phase noise of the signal light propagating through the optical transmission line, σ sig is derived by the following Equation 9. (Formula 9) σ sig = σ M / √2

[0041] As a result, it can be seen that the phase noise of the signal light can be derived more accurately according to this embodiment. For example, according to this embodiment, the possibility that the influence of uncertainties caused by the length of the moving average time is mixed into the measured value, such as in the method of subtracting the moving average value of the optical phase from the measured phase of the received signal, is significantly reduced.

[0042] Furthermore, when considering the transmission effect, it is desirable to also consider the effect of the spectral linewidth of the local light. In this case, the standard deviation σ of the phase noise of the optical signal received by the optical receiving device (sometimes called the received signal) is RX and the standard deviation of the phase noise due to the spectral linewidth of the local oscillator, σ LO and the standard deviation of the phase noise of the signal light is σ sig The relationship between is expressed by the following formula 10. (Formula 10) σ RX 2 = σ sig 2 +σ LO 2

[0043] As mentioned above, the standard deviation of the phase noise of the signal light is σ sig is the differential phase φ of the signal light diff Standard deviation σ of the measurement results in (i) M The standard deviation of the phase noise due to the spectral linewidth of the local oscillator is σ LO is the standard deviation of the phase noise of the signal light σ sig Using the same procedure, the standard deviation σ ML Using this, it is derived using the following equation 11. (Formula 11) σ LO = σ ML / √2

[0044] As a result, the standard deviation σ of the phase noise of the received signal is calculated using Equations 9 to 11. RX The standard deviation of the phase noise of the received signal is σ RX is used for purposes such as evaluating and monitoring transmission effects.

[0045] (Method of measuring differential phase) In one embodiment, the differential phase φ at each of the N sample points diff (i) is derived by signal processing of the digital data obtained by converting the light to be measured (sometimes referred to as object light) into an electrical signal, sampling and quantizing the electrical signal. For example, time series data of the phase of the object light is generated at time intervals that are the same or nearly the same as the symbol time. The differential phase φ is calculated by calculating the difference between two pieces of data that are temporally adjacent in the time series data. diff (i) is derived.

[0046] In another embodiment, first, the target light is split into a first light and a second light. Next, the delay time difference τ between the first light and the second light is adjusted. Specifically, the delay time difference τ is adjusted to be 2πfτ=2nπ+π / 2, where f is the frequency of the target light and n is a positive integer. Next, the first light and the second light with the adjusted delay time difference τ are multiplexed and interfered with each other. Thereafter, the multiplexed light is photoelectrically converted, sampled, and quantized to obtain a differential phase φ diff (i) is derived.

[0047] As described above, the differential phase is derived by a relatively simple procedure. Moreover, the variance or standard deviation of the differential phase is also derived by a relatively simple calculation process. Therefore, according to this embodiment, the load on the computer can be reduced.

[0048] (Example of evaluation of phase noise of signal light) When evaluating the phase noise of an optical signal used in actual communications, the optical signal has spectral components due to modulation, and therefore the modulation components may be mixed into the measurement results and affect the measurement of optical phase noise.

[0049] Therefore, in one embodiment, the communication system 100 evaluates the phase noise using the optical signal receiving device 120, for example, in a commissioning test after the construction of the communication system 100. In another embodiment, the communication system 100 provides a dedicated wavelength for measuring the phase noise during the operation of the communication system 100, and constantly measures the phase noise of the light of the wavelength. For example, in an embodiment in which the differential phase is derived by signal processing of digital data, the phase noise is evaluated by measuring the differential phase of the I component and the Q component of the light of the above wavelength.

[0050] (II. Principle of detecting phase fluctuation caused by polarization fluctuation) Next, the principle of detecting phase fluctuation caused by polarization fluctuation will be described. Details of a detection device and a detection method for polarization fluctuation based on the above detection principle will be described later with reference to Figs.

[0051] The present inventors have found that the above-mentioned differential phase (particularly, the differential phase measured using an optical delay interferometer) may include phase fluctuations due to polarization fluctuations in addition to optical phase noise. For example, in the above-mentioned coherent optical communication method, the amount of information transmitted can be increased by carrying independent data signals on two orthogonal polarization modes, HE11x and HE11y. In the above-mentioned communication method, since coupling occurs between both modes during the transmission process of the optical fiber, high-speed digital signal processing is performed on the receiver side to separate the received signal into the original orthogonal polarization modes.

[0052] Conventionally, polarization fluctuations have been considered to be sufficiently slow compared to the speed of signal processing on the receiver side. However, recent research has shown that high-speed polarization fluctuations of about 10 kHz or more can occur. Such high-speed polarization fluctuations are accompanied by optical phase fluctuations, similar to the optical phase noise described above. Therefore, depending on the state of polarization fluctuations, bit errors can occur in optical transmission systems.

[0053] In an optical transmission system, the following situations are assumed to occur in a relatively high-speed polarization fluctuation: (i) when a fluctuating lateral stress is applied to the optical fiber, causing the birefringence of the optical fiber to fluctuate, and (ii) when a sudden twist occurs in the optical fiber, causing the polarization plane to rotate at high speed. Therefore, in many cases, phase fluctuations based on polarization fluctuations occur suddenly.

[0054] In the above-mentioned principle of measuring optical phase noise, statistical processing is performed in the process of deriving the phase noise of the signal light. Therefore, sudden phase fluctuations are unlikely to be reflected in the measurement results of the phase noise of the signal light. Therefore, by detecting phase fluctuations caused by sudden polarization fluctuations based on the measurement results in real time, rather than just grasping statistics such as standard deviation, the state of the optical transmission system and / or the optical signal can be evaluated more accurately.

[0055] The orthogonal polarization mode of the signal light propagating in the z direction is E x (t) and E y(t), and the unit vectors in the x and y directions are k x and k y Then, the electric field E(t) of the light propagated through the optical transmission line and received (sometimes referred to as the received optical electric field) is expressed by the following equation B-1. (Formula B-1) E(t) = [E x (t)cos{2πft+φ n (t)}k x +E y (t)cos{2πft+φ n (t)+δ(t)}k y ]

[0056] In Equation B-1, δ(t) is E x (t) and E y (t) represents the phase difference. n (t) represents the optical phase noise. f represents the frequency of the signal light. E(t), k x and k y is a vector.

[0057] Assuming that the optical delay interferometer has no polarization dependency, the output current i of the optical receiver connected to the optical delay interferometer is expressed by the following equation B-2. (Formula B-2) i=R{E(t)+E(t-τ)}·{E(t)+E(t-τ)}

[0058] In Equation B-2, τ represents the delay time difference between the two paths of the optical delay interferometer. R represents the sensitivity of the optical receiver. · represents the inner product.

[0059] Considering that the optical receiver does not respond to the frequency of light, and ignoring the DC component of Equation B-2, the receiving current i output from the optical receiver is expressed by the following Equation B-3. (Formula B-3)

number

[0060] In the formula B-3, when the delay time difference τ is adjusted to be 2πfτ=2nπ+π / 2 (n is a positive integer), the above-mentioned receiving current i is expressed by the following formula B-4. (Formula B-4)

number

[0061] When a semiconductor laser output light is used as the signal light, the AM noise of the signal light is sufficiently small due to the nature of the semiconductor laser output light. In this case, the above-mentioned receiving current i is expressed by the following formula B-5. (Formula B-5)

number

[0062] Here, if τ is sufficiently short, |φ n (t)-φ n We can assume that |δ(t)-δ(t-τ)|≪1 and |δ(t)-δ(t-τ)|≪1. For example, if τ is one symbol time, then |φ n (t)-φ n It can be assumed that |δ(t)-δ(t-τ)| ≪ 1 and |δ(t)-δ(t-τ)| ≪ 1. In this case, the above-mentioned received current i is approximated by the following equation B-6. (Formula B-6)

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[0063] As shown in Equation B-6, the above received current i includes not only the term caused by the phase noise of the signal light propagating through the optical transmission line, but also the term i caused by the polarization fluctuation expressed by the following Equation B-7: pol Includes. (Formula B-7) i pol =-RE y 2 (t)sin{δ(t)-δ(t-τ)}

[0064] According to Equation B-7, the received current i is observed to include not only phase noise but also fluctuations due to polarization fluctuations. In other words, phase fluctuations due to sudden polarization fluctuations can be detected based on the real-time measurement results of the received current i. In this way, the present inventor has found that, when sudden polarization fluctuations occur in signal light, the occurrence of the polarization fluctuations can be detected by observing the output current i of an optical receiver connected to an optical delay interferometer adjusted so that the delay time difference τ is 2πfτ=2nπ+π / 2 (n is a positive integer).

[0065] (A. When δ(t) fluctuates slightly) As described above, in Equation B-6, τ is a sufficiently short time, and the absolute value of the difference between δ(t) and δ(t-τ) is sufficiently smaller than 1. At this time, the term i pol is approximated by the following equation B-8. (Formula B-8)

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[0066] In an actual device, when the output current i of an optical receiver connected to an optical delay interferometer is measured, the output current i is amplified by an amplifier following the optical receiver. In this case, the low-pass filter characteristic of the amplifier causes the current i expressed by Equation B-8 to be amplified. pol is integrated over time t. In an ideal integration case, the amplifier output current i pol_LPF is expressed by the following equation B-9: The amplifier may be an example of an integrating circuit. (Formula B-9) i pol_LPF =-RE y 2 (t) δ(t)

[0067] Equation B-9 is valid in the range where the low-pass filter operates as an integrating circuit. In other words, Equation B-9 is valid for frequencies equal to or higher than the cutoff frequency of the low-pass filter. In this case, if the contribution of R in Equation B-9 is normalized using the power ratio α (0≦α≦1) of the orthogonal polarization signals defined by the following Equations B-10 and B-11, the normalized amplifier output current i pol_LPF_norm is expressed by the following equation B-12. This makes it possible to directly measure δ(t) using an optical delay interferometer. (Formula B-10) Ex 2 (t) = αE 2 (Formula B-11) Ey 2 (t) = (1-α) E 2 (Formula B-12)

number

[0068] In addition, since the term caused by phase noise in Equation B-6 is a stochastic process, the term caused by the phase noise is not phase continuous. Therefore, the integral effect in the amplifier does not act on the term caused by phase noise. As a result, the term caused by phase noise in Equation B-6 is output from the amplifier as Equation B-6.

[0069] As shown in Equation B-6, since the above-mentioned reception current i is measured in a state where a term caused by phase noise (sometimes referred to as a phase noise component) and a term caused by polarization fluctuation (sometimes referred to as a polarization fluctuation component) are mixed, it is preferable to measure the phase noise component during a period when the polarization fluctuation component is small. Therefore, for example, by outputting an alarm when the occurrence of polarization fluctuation is detected, adding a flag indicating that polarization fluctuation has been detected to the measurement data of the reception current i, or recording the time when the polarization fluctuation was detected, the measurement and / or analysis of the phase noise can be effectively performed.

[0070] (B. When δ(t) fluctuates greatly) In this case, the condition that the absolute value of the difference between δ(t) and δ(t-τ) is sufficiently smaller than 1 does not necessarily hold. Therefore, the above-mentioned formula B-12 does not necessarily hold. However, even in such a case, formula B-7 holds. Therefore, when the output current i of the optical receiver connected to the optical delay interferometer is amplified by, for example, an amplifier following the optical receiver, δ(t) is integrated while being restricted by a sine function.

[0071] Here, since δ(t) varies between -π / 2≦δ(t)≦π / 2, the measurement result by the optical delay interferometer (i pol The value of sin{δ(t)-δ(t-τ)} in (i) varies within the range of -1≦sin{δ(t)-δ(t-τ)}≦1 with respect to the variation of δ(t). pol When the measurement results are Fourier transformed, the spectral components become the amplitude values ​​of the fluctuations.

[0072] (Trajectory on the Poincaré sphere) It is known that a point P(S1, S2, S3) on the Poincaré sphere, which is expressed using the Stokes parameters S0, S1, S2, and S3, represents the polarization state of light. x (t) and E y The relationship between (t), δ(t), and the Stokes parameters S0, S1, S2, and S3 is expressed by the following equations B-13, B-14, B-15, and B-16. (Formula B-13)

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number

number

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[0073] In the formulas B-13, B-14, B-15 and B-16, χ represents the ellipticity. ψ represents the azimuth of the elliptical polarization. The formulas B-13, B-14, B-15 and B-16 represent the relationship between the rectangular coordinates (S1, S2, S3) and the polar coordinates (S0, 2χ, 2ψ).

[0074] A sphere of radius S0 in the Cartesian coordinate system (S1, S2, S3) is called the Poincaré sphere, and the longitude of the Poincaré sphere represents twice the direction ψ, and the latitude of the Poincaré sphere represents twice the ellipticity χ. For example, the angle UOQ formed by the origin O(0,0,0) of the Cartesian coordinate system, point U(S1,S2,0) on the Poincaré sphere, and point Q(S1,0,0) on the Poincaré sphere is 2ψ. Similarly, the angle POQ formed by the origin O(0,0,0) of the Cartesian coordinate system, point U(S1,S2,0) on the Poincaré sphere, and point P(S1,S2,S3) on the Poincaré sphere is 2χ.

[0075] Here, as shown in equations B-15 and B-16, point P (S1, S2, S3) on the Poincaré sphere moves on a circumference R centered on point Q (S1, 0, 0) with a change in δ(t). Now consider a case where point P on the Poincaré sphere moves slightly to point P' on the circumference R with a change in δ(t). If the angle of POP' formed by point P, origin O, and point P' is dθ, and the slight deviation of δ(t) is dδ, the relationship between dθ and dδ is expressed by the following equation B-17. Note that dδ represents the angle of PQP' formed by point P, point Q, and point P'. (Formula B-17)

number

[0076] As described above, by measuring the output current i of the optical receiver connected to the optical delay interferometer, the phase shift approximated by Equation B-8 is observed. The result of converting the phase shift to dθ described above is called dθ. DL Then, dθ DL is expressed as the following equation B-18 using the power ratio α described above. (Formula B-18)

number

[0077] Therefore, according to the method using an optical delay interferometer, the phase shift on the Poincaré sphere is c(t) times the angle of movement on the Poincaré sphere. c(t) is expressed by the following B-19. (Formula B-19)

number

[0078] The relationship between c(t) and the above-mentioned α is expressed by the following formula B-20. In this case, α may be greater than 0 and less than 1. When α is 0 or 1, the electric field is concentrated in HE11x or HE11y, resulting in a completely linearly polarized wave. Therefore, when α is 0 or 1, there is no need to consider the concept of polarization fluctuation. (Formula B-20)

number

[0079] As described above, according to this principle, the phase fluctuation amplitude width measured by the optical delay interferometer represents the approximate value of the movement angle of the trajectory on the Poincaré sphere (i.e., the amount of phase change). The above phase fluctuation amplitude width is obtained as the amplitude value of the frequency component that gives a peak in the Fourier transform result of the optical receiver output current.

[0080] (Overview of communication system 100) 1 is a schematic diagram showing an example of a system configuration of a communication system 100. In this embodiment, the details of the communication system 100 will be described using as an example a case in which an information signal is transmitted by an optical signal transmitting device 110 propagating through an optical transmission line 10 and reaching an optical signal receiving device 120.

[0081] In this embodiment, light is transmitted through the optical transmission line 10. The optical transmission line 10 is exemplified by an optical fiber.

[0082] In this embodiment, the communication system 100 includes an optical signal transmitting device 110 and an optical signal receiving device 120. In this embodiment, the optical signal receiving device 120 includes a local oscillator 130, an optical 90-degree hybrid 140, an optical receiver 152, an optical receiver 154, an AD converter 162, an AD converter 164, and a signal processing unit 170.

[0083] In this embodiment, the optical signal transmitting device 110 generates an optical signal. The optical signal transmitting device 110 generates a polarization multiplexed optical signal, for example, by modulating an optical carrier with an information signal to be transmitted. The optical signal may be a signal on which a symbol time series is superimposed. The optical signal transmitting device 110 outputs light (sometimes referred to as signal light) constituting the optical signal. The signal light is transmitted to the optical signal receiving device 120 via the optical transmission path 10.

[0084] In this embodiment, the optical signal receiving device 120 receives the signal light that has propagated through the optical transmission line 10. The optical signal receiving device 120 demodulates the received optical signal to generate an information signal.

[0085] While the signal light propagates through the optical transmission line 10, the signal light is subjected to various linear and nonlinear effects. When the signal light is subjected to nonlinear effects, the phase of the signal light is affected. Therefore, the signal light propagated through the optical transmission line 10 contains a phase noise component. In this embodiment, the optical signal receiving device 120 derives an index for evaluating the phase noise of the signal light. This allows the optical signal receiving device 120 to evaluate the phase noise of the signal light propagated through the optical transmission line 10. The above index may be an index indicating the degree of phase noise of the signal light. As described above, according to this embodiment, the degree of variation in the differential phase of the signal light is adopted as the above index. Examples of the index indicating the degree of variation include variance and standard deviation.

[0086] In this embodiment, the local oscillator 130 outputs locally oscillated light (as described above, may be referred to as local light). The local light output from the local oscillator 130 is input to the optical 90-degree hybrid 140.

[0087] In this embodiment, the optical 90-degree hybrid 140 causes the signal light propagated through the optical transmission line 10 to interfere with the local light from the local oscillator 130, and outputs a plurality of optical signals in which the received signal transmitted by the signal light is separated into a plurality of signal components. In this embodiment, the optical 90-degree hybrid 140 mixes the signal light and the local light, and outputs two optical signals with a phase difference of 90 degrees. The above two signals may be referred to as an I signal and a Q signal, respectively.

[0088] In this embodiment, the optical receiver 152 converts an optical signal into an electrical signal. The optical receiver 152 converts an I signal of a received signal transmitted by a signal light into an electrical signal. This converts the I signal from an optical signal into an electrical signal. The optical receiver 152 outputs an electrical signal corresponding to the I signal to the AD converter 162.

[0089] In this embodiment, the optical receiver 154 converts an optical signal into an electrical signal. The optical receiver 154 converts a Q signal of a received signal transmitted by a signal light into an electrical signal. This converts the Q signal from an optical signal into an electrical signal. The optical receiver 154 outputs an electrical signal corresponding to the Q signal to the AD converter 164.

[0090] In this embodiment, the AD converter 162 converts the electrical signal from an analog signal to a digital signal. The AD converter 162 converts the electrical signal corresponding to the I signal into a digital signal. The AD converter 162 outputs to the signal processing unit 170 a plurality of digital signals (sometimes referred to as sampled I signals) corresponding to a plurality of time points in a measurement period (sometimes referred to as an evaluation period) for deriving an evaluation index of phase noise. The time intervals between the plurality of time points may be approximately constant.

[0091] The sampling rate of the AD converter 162 may be equal to or greater than the symbol rate of the received signal. This sets the sample time interval to be equal to or less than the length of the symbol time. The sampling rate of the AD converter 162 may be equal to the symbol rate of the received signal. This sets the sample time interval to be equal to the length of the symbol time.

[0092] In this embodiment, the AD converter 164 converts the electrical signal from an analog signal to a digital signal. The AD converter 164 converts the electrical signal corresponding to the Q signal into a digital signal. The AD converter 164 outputs a plurality of digital signals (sometimes referred to as sampled Q signals) corresponding to each of a plurality of time points in the evaluation period to the signal processing unit 170. The time intervals between the plurality of time points may be approximately constant.

[0093] The sampling rate of the AD converter 164 may be equal to or greater than the symbol rate of the received signal, thereby setting the sample time interval to the length of the symbol time or less. The sampling rate of the AD converter 164 may be equal to the symbol rate of the received signal, thereby setting the sample time interval to the length of the symbol time.

[0094] In this embodiment, the signal processing unit 170 demodulates a received signal transmitted by a signal light to generate an information signal. In this embodiment, the signal processing unit 170 evaluates the phase noise of the signal light propagated through the optical transmission line 10. The signal processing unit 170 may monitor the phase noise of the signal light propagated through the optical transmission line 10. Details of the signal processing unit 170 will be described later.

[0095] (Specific Configurations of Each Part of Communication System 100) Each part of the communication system 100 may be realized by hardware, software, or hardware and software. At least a part of each part of the communication system 100 may be realized by an analog circuit or a digital circuit. At least a part of each part of the communication system 100 may be realized by a single server or by multiple servers. At least a part of each part of the communication system 100 may be realized on a virtual machine or a cloud system. At least a part of each part of the communication system 100 may be realized by a personal computer or a mobile terminal. Examples of the mobile terminal include a mobile phone, a smartphone, a PDA (registered trademark), a tablet, a notebook computer or a laptop computer, and a wearable computer. Each part of the communication system 100 may store information using a distributed ledger technology such as a blockchain or a distributed network.

[0096] When at least some of the components constituting the communication system 100 are realized by software, the components realized by the software may be realized by starting a program that defines the operation of the components in an information processing device of a general configuration. The information processing device includes, for example, (i) a data processing device having a processor such as a CPU or a GPU, a ROM, a RAM, a communication interface, etc., (ii) input devices such as a keyboard, a touch panel, a camera, a microphone, various sensors, a GPS receiver, etc., (iii) output devices such as a display device, a speaker, a vibration device, etc., and (iv) storage devices such as a memory, a HDD, etc. (including an external storage device).

[0097] In the information processing device, the data processing device or storage device may store a program. The program may be stored in a non-transitory computer-readable recording medium. The program is executed by a processor to cause the information processing device to perform operations defined by the program.

[0098] The program may be stored in a computer-readable medium such as a CD-ROM, a DVD-ROM, a memory, or a hard disk, or may be stored in a storage device connected to a network. The program may be installed in a computer constituting at least a part of the communication system 100 from the computer-readable medium or a storage device connected to the network. Execution of the program may cause the computer to function as at least a part of each unit of the communication system 100.

[0099] The program that causes a computer to function as at least a part of each unit of the communication system 100 may include modules that define the operation of each unit of the communication system 100. These programs or modules act on a data processing device, an input device, an output device, a storage device, etc. to cause the computer to function as each unit of the communication system 100 or to execute an information processing method for each unit of the communication system 100.

[0100] When the program is loaded into a computer, the information processing described in the program functions as specific means in which software related to the program works in cooperation with various hardware resources of the communication system 100. The specific means above then realizes calculation or processing of information according to the intended use of the computer in this embodiment, thereby constructing the communication system 100 according to the intended use.

[0101] The above program may be a program for causing a computer to function as the optical signal receiving device 120 or a part thereof. The above program may be a program for causing a computer to execute an information processing method in the optical signal receiving device 120 or a part thereof. Examples of parts of the optical signal receiving device 120 include the AD converter 162, the AD converter 164, and the signal processing unit 170.

[0102] In one embodiment, the information processing method may be an evaluation method for evaluating phase noise of signal light propagated through an optical transmission line. The evaluation method includes, for example, a differential phase information acquisition step of acquiring information indicating the differential phase of input light at each of a plurality of time points included in an evaluation period. The evaluation method includes an index derivation step of deriving a degree of variation in the differential phase at each of the plurality of time points as an index for evaluating phase noise. In the evaluation method, the differential phase represents, for example, a difference in phase of input light at two time points adjacent in time among the plurality of time points. In the evaluation method, the time interval between the plurality of time points is, for example, approximately constant. The time interval between the plurality of time points is, for example, equal to or less than the length of a symbol time of a signal transmitted by the input light.

[0103] The communication system 100 may be an example of an optical communication system. The optical signal transmitting device 110 may be an example of an optical transmitter. The optical signal receiving device 120 may be an example of an evaluation device or an optical receiver. The local oscillator 130 may be an example of a local light source. The optical receiver 152 may be an example of an optical-to-electrical conversion unit. The optical receiver 154 may be an example of an optical-to-electrical conversion unit. The AD converter 162 may be an example of an analog-to-digital conversion unit. The AD converter 164 may be an example of an analog-to-digital conversion unit. The signal processing unit 170 may be an example of an evaluation device. The I signal may be an example of an optical signal of an I signal component. The sampled I signal may be an example of a first digital signal. The Q signal may be an example of an optical signal of a Q signal component. The sampled Q signal may be an example of a second digital signal. The target light may be an example of an input light. The light constituting various optical signals may be an example of an input light.

[0104] (An example of another embodiment) In this embodiment, in order to facilitate understanding of the communication system 100, the details of the communication system 100 have been described by taking as an example a case in which an information signal is transmitted by an optical signal transmitting device 110 propagating through an optical transmission line 10 and reaching an optical signal receiving device 120. However, the communication system 100 is not limited to this embodiment. For example, various multiplexing techniques are known in the field of optical communication. Therefore, according to another embodiment, various multiplexing techniques may be applied to the above-described communication system 100.

[0105] Examples of multiplexing techniques include optical wavelength multiplexing (sometimes referred to as wavelength division multiplexing), space division multiplexing, etc. Optical wavelength multiplexing allows a single optical fiber to be used to simultaneously transmit multiple optical signals with different wavelengths. Examples of space division multiplexing techniques include a technique using a multicore optical fiber in which multiple cores are arranged in a single cladding, and a technique using a multimode optical fiber designed to be capable of propagating multiple modes of light.

[0106] 2 illustrates an example of the internal configuration of the signal processing unit 170. In this embodiment, the signal processing unit 170 includes a digital signal processing circuit 210, a decoding circuit 220, an amplitude noise evaluation unit 230, and a phase noise evaluation unit 240. In this embodiment, the phase noise evaluation unit 240 includes a differential phase signal generation unit 242, a histogram generation unit 244, and a standard deviation calculation unit 246.

[0107] In this embodiment, the digital signal processing circuit 210 receives a sampled I signal from the AD converter 162. The digital signal processing circuit 210 receives a sampled Q signal from the AD converter 164. The digital signal processing circuit 210 uses the I signal and the Q signal to perform various digital signal processing for demodulating and compensating the received signal. In this embodiment, the decoding circuit 220 performs error correction processing, decoding processing, etc. As a result, an information signal is extracted from the received signal.

[0108] In this embodiment, the amplitude noise evaluation unit 230 evaluates the amplitude noise of the signal light propagated through the optical transmission line 10. The amplitude noise evaluation unit 230 derives various indices for evaluating the amplitude noise of the signal light propagated through the optical transmission line 10. The above-mentioned indices include an optical signal-to-noise ratio. The optical signal-to-noise ratio is measured using at least one of a sampled I signal and a sampled Q signal. For example, when the optical signal-to-noise ratio of the signal light is measured using a sampled I signal, the I signal is input to the amplitude noise evaluation unit 230. Various known methods can be adopted as a method for measuring the optical signal-to-noise ratio. For example, the amplitude noise evaluation unit 230 includes an average calculation unit, a histogram generation unit, and a standard deviation calculation unit. Thereby, the amplitude noise of the signal light is measured.

[0109] In this embodiment, the phase noise evaluation unit 240 evaluates the phase noise of the signal light propagated through the optical transmission line 10. The phase noise evaluation unit 240 derives various indices for evaluating the phase noise of the signal light propagated through the optical transmission line 10. As described above, the indices include the degree of variation in the differential phase. Indices indicating the degree of variation include variance, standard deviation, and the like.

[0110] In this embodiment, an example of the phase noise evaluating section 240 will be described taking as an example a case where the phase noise evaluating section 240 derives the standard deviation of the differential phase in the evaluation period as an index indicating the degree of variation in the measured differential phase. However, the phase noise evaluating section 240 is not limited to this embodiment. It should be noted that in other embodiments, the phase noise evaluating section 240 may derive the variance of the differential phase in the evaluation period as an index indicating the degree of variation in the differential phase.

[0111] In this embodiment, the differential phase signal generating unit 242 acquires I signal data and Q signal data (sometimes referred to as input signals) at each of N (N is a positive integer) sampling points in the evaluation period from, for example, the digital signal processing circuit 210. Each of the N sampling points corresponds to each of a plurality of time points included in the evaluation period.

[0112] The differential phase signal generating unit 242 determines the phase of the signal light measured at each of the N sampling points based on the I signal data and the Q signal data at each of the N sampling points. The phase of the signal light at the i-th sampling point (i is an integer equal to or greater than 1 and equal to or less than (N-1)) is determined, for example, according to the above-mentioned Equation 4.

[0113] The differential phase signal generator 242 calculates a differential phase value at each of the N sampling points based on the measured value of the phase of the signal light at each of the N sampling points. diff (i) is calculated, for example, according to Equation 3 above.

[0114] According to Equation 3, the difference in phase of the signal light at two time points adjacent in time among the multiple time points is calculated. The differential phase signal generating unit 242 can obtain information indicating the differential phase of the signal light at each of the multiple time points included in the evaluation period.

[0115] The differential phase signal generator 242 may remove the modulation components and generate information indicating the differential phase at each of the N sampling points. The differential phase signal generator 242 removes the modulation components included in the received signal based on, for example, a plurality of sampled I and Q signals. As described above, in the case of M-phase modulation, the modulation components can be removed by calculating the Mth power of the received signal.

[0116] In this embodiment, the histogram generating unit 244 obtains information indicating the (N-1) differential phases (sometimes referred to as differential phase signals) from the differential phase signal generating unit 242. The histogram generating unit 244 generates a histogram of the (N-1) differential phases. The histogram generating unit 244 outputs information indicating the generated histogram to the standard deviation calculating unit 246.

[0117] In this embodiment, the standard deviation calculation section 246 calculates the standard deviation of the (N-1) differential phases. For example, the standard deviation calculation section 246 performs fitting to a normal distribution on the histogram generated by the histogram generation section 244. In addition, the standard deviation calculation section 246 calculates the standard deviation of the normal distribution.

[0118] The standard deviation calculating unit 246 may derive the calculated standard deviation as an index for evaluating the phase noise of the signal light. As shown in Equation 6, the square of the standard deviation of the phase noise of the signal light is expressed as 1 / 2 times the square of the standard deviation of the differential phase. The standard deviation calculating unit 246 may derive the standard deviation of the phase noise of the signal light in accordance with Equation 9, based on the standard deviations of the (N-1) differential phases.

[0119] As shown in Equation 7, the square of the standard deviation of the phase noise of the received signal is expressed as the square root of the sum of the square of the standard deviation of the phase noise of the signal light and the square of the standard deviation of the phase noise due to the spectral linewidth of the local oscillator light. The standard deviation calculation section 246 may derive the standard deviation of the phase noise of the received signal based on the standard deviation of the N differential phases in accordance with Equations 9 to 11.

[0120] The standard deviation calculation unit 246 may generate information for evaluating the phase noise of the signal light (sometimes referred to as evaluation information). Examples of the information for evaluating the phase noise of the signal light include information indicating the standard deviation of N differential phases, the standard deviation of the phase noise of the signal light, and / or the standard deviation of the phase noise of the received signal.

[0121] The phase noise evaluating section 240 may be an example of an evaluation device. The differential phase signal generating section 242 may be an example of a differential phase information acquiring section. The histogram generating section 244 may be an example of a differential phase information acquiring section. The standard deviation calculating section 246 may be an example of an index derivation section.

[0122] 3 shows an example of a system configuration of a phase noise evaluation apparatus 320. In this embodiment, the phase noise evaluation apparatus 320 includes an optical delay interferometer 340, an optical receiver 350, an AD converter 360, and a signal processing unit 370.

[0123] In the communication system 100 described with reference to Figures 1 and 2, the optical signal receiving device 120 performs high-speed A / D conversion and digital signal processing to calculate the standard deviation of the differential phase in the evaluation facility. This embodiment differs from the optical signal receiving device 120 described with reference to Figures 1 and 2 in that high-speed arithmetic processing of the electrical signal in the optical signal receiving device 120 is performed at the optical level.

[0124] In this embodiment, the phase noise evaluation apparatus 320 outputs the degree of variation in the differential phase of light (sometimes referred to as input light) input to the phase noise evaluation apparatus 320 as an index for evaluating the phase noise of the input light. This enables the phase noise evaluation apparatus 320 to evaluate the phase noise of the input light.

[0125] The input light may be a signal light propagated through the optical transmission line 10, or may be an output light of the optical 90-degree hybrid 140. The phase noise evaluation device 320 is attached to, for example, the optical signal receiving device 120, and receives as input a part of the signal light propagated through the optical transmission line 10.

[0126] In actual communication, optical signals have spectral components due to modulation, which can make it difficult to measure optical phase noise.

[0127] Therefore, in one embodiment, the phase noise evaluation apparatus 320 is attached to the communication system 100 in order to evaluate the phase noise, for example, in a commissioning test after construction of the communication system 100. In another embodiment, the phase noise evaluation apparatus 320 is attached to the communication system 100 in order to provide a dedicated wavelength for measuring the phase noise and constantly measure the phase noise of light of that wavelength during the operation of the communication system 100. For example, in an embodiment in which the differential phase is derived by signal processing of digital data, the differential phase of the I component and Q component of the light of the above-mentioned wavelength is measured to evaluate the phase noise.

[0128] In this embodiment, light (sometimes referred to as input light, target light, etc.) is input to the optical delay interferometer 340. The optical delay interferometer 340 has, for example, a first optical path and a second optical path. The optical delay interferometer 340 splits the input light into, for example, a first input light and a second input light. The optical delay interferometer 340 causes, for example, the first input light that has passed through the first optical path to be multiplexed and interfered with the second input light that has passed through the second optical path.

[0129] In this embodiment, the first optical path and the second optical path of the optical delay interferometer 340 are set so that the delay time difference τ between the first input light that has passed through the first optical path and the second input light that has passed through the second optical path, and the frequency f of the input light satisfy the relationship of the following Equation 12. (Formula 12) 2πfτ=2nπ+π / 2 (where n is an integer).

[0130] When the relationship of the above formula 12 is established, the output current i of the optical receiver 350 to which the output light of the optical delay interferometer 340 is input is approximated by the following formula 13. (Formula 13) i=RE 2 {φn(t)-φn(t-τ)} In the above equation 12, R is the sensitivity of the optical receiver 350. E is the electric field of the first input light and the second input light. φn(t) is the phase noise of the input light at time t.

[0131] In this embodiment, the optical receiver 350 converts the output light of the optical delay interferometer 340 into an electrical signal. As described above, the output current of the optical receiver 350 indicates the differential phase of the input light at each of the multiple time points included in the evaluation period. This allows the optical receiver 350 to obtain information indicating the differential phase of the input light at each of the multiple time points included in the evaluation period. As described above, the differential phase indicates the difference in phase of the input light at two time points that are adjacent in time among the multiple time points.

[0132] In this embodiment, the AD converter 360 converts the electrical signal output by the optical receiver 350 from an analog signal to a digital signal. The AD converter 360 outputs a plurality of digital signals corresponding to the differential phase at each of a plurality of time points included in the evaluation period to the signal processing unit 370. The time intervals between the plurality of time points may be approximately constant.

[0133] According to this embodiment, the sampling rate of the AD converter 360 can be significantly smaller than the sampling rate of the AD converter 162 or the AD converter 164 that samples the signal light. For example, when the sampling rate of the communication light is 100 GS / s, the sampling rate of the AD converter 360 can be reduced to about 1 GS / s.

[0134] As shown in the above-mentioned formula 13, when the optical delay interferometer 340 is used, a value obtained by converting the differential phase into intensity is measured. That is, the optical delay interferometer 340 converts the differential phase noise into amplitude noise. Moreover, the frequency components of the differential phase noise are almost white noise. In consideration of the above, an optical receiver with a narrow band may be used as the optical receiver 350. Specifically, an optical receiver having a band of about 100 MHz is used as the optical receiver 350. As a result, the sampling rate of the AD converter 360 that samples the output current of the optical receiver 350 may also be reduced.

[0135] In this embodiment, the signal processing unit 370 receives the above-mentioned multiple digital signals from the AD converter 360. The signal processing unit 370 derives the degree of variation of the differential phase at each of multiple time points as an index for evaluating the phase noise of the input light. As described above, examples of the index indicating the degree of variation include standard deviation and variance. As shown in Equation 6, the square of the standard deviation of the phase noise of the input light is expressed as 1 / 2 times the square of the standard deviation of the differential phase. The signal processing unit 370 may output information indicating an evaluation of the phase noise of the input light (sometimes referred to as evaluation information). Details of the signal processing unit 370 will be described later.

[0136] In this embodiment, high-speed arithmetic processing of electrical signals in the optical signal receiving device 120 is performed at the optical level. This allows for power saving and cost reduction. Also, in this embodiment, the reciprocal of the delay time is equivalent to the sampling rate in the AD converter. Therefore, the power used for sampling can be saved.

[0137] The phase noise evaluation apparatus 320 may be an example of an evaluation apparatus. The optical delay interferometer 340 may be an example of a delay interferometer. The optical receiver 350 may be an example of a differential phase information acquisition section or an opto-electrical conversion section. The AD converter 360 may be an example of a differential phase information acquisition section or an analog-digital conversion section. The signal processing section 370 may be an example of a differential phase information acquisition section or an index derivation section.

[0138] (An example of another embodiment) In the present embodiment, an example of the phase noise evaluation apparatus 320 has been described, taking as an example a case in which the phase noise evaluation apparatus 320 includes an AD converter 360 and a signal processing unit 370. However, the phase noise evaluation apparatus 320 is not limited to this embodiment. In other embodiments, the signal processing unit 370 has the function of the AD converter 360, and the phase noise evaluation apparatus 320 does not need to include the AD converter 360.

[0139] 4 illustrates an example of an internal configuration of the optical delay interferometer 340. In this embodiment, the optical delay interferometer 340 includes a semi-transmitting mirror 422, a semi-transmitting mirror 424, a total reflecting mirror 432, a total reflecting mirror 434, and an optical phase adjuster 436.

[0140] The input light is split into a first signal light that passes through the semi-transmitting mirror 422 and a second signal light that is reflected by the semi-transmitting mirror 422. The first signal light passes through the semi-transmitting mirror 424 and is output from the optical delay interferometer 340. On the other hand, the second signal light is reflected by the total reflecting mirror 432, the total reflecting mirror 434, and the semi-transmitting mirror 424, and is then mixed with the first signal light that passed through the semi-transmitting mirror 424 and is output from the optical delay interferometer 340.

[0141] In this embodiment, the optical delay interferometer 340 provides an optical path difference between the first signal light and the second signal light. If the delay time difference due to the optical path difference is τ, the time is t, and the phase of the first signal light when input to the optical receiver 350 is φ(t), the phase of the second signal light when input to the optical receiver 350 is φ(t-τ). The delay time difference τ is adjusted so as to satisfy the relationship of the above-mentioned formula 8.

[0142] Moreover, in this embodiment, an optical phase adjuster 436 is disposed in a region of the optical path of the second signal light (the above-mentioned second optical path) that does not overlap with the optical path of the first signal light (the above-mentioned first optical path). The optical phase adjuster 436 adjusts the phase of the light passing through the optical phase adjuster 436. For example, the optical phase adjuster 436 adjusts the phase of the light passing through the optical phase adjuster 436 in accordance with a voltage applied to the optical phase adjuster 436. Examples of the optical phase adjuster 436 include a liquid phase element and lithium niobate crystal.

[0143] According to the present embodiment, the delay time difference τ is adjusted by adjusting the distance between the first optical path and the second optical path and / or the voltage applied to the optical phase adjuster 436. This allows the operating point of the optical delay interferometer 340 to be adjusted. The delay time difference τ may be adjusted during calibration or in real time.

[0144] In another embodiment, the optical phase adjuster 436 may be disposed in a region of the first optical path that does not overlap with the second optical path. Also, the optical delay interferometer 340 does not need to include the optical phase adjuster 436.

[0145] 5 illustrates an example of an internal configuration of the optical delay interferometer 540. The optical delay interferometer 540 is another example of the optical delay interferometer 340, and can be implemented in the phase noise evaluation apparatus 320 instead of the optical delay interferometer 340.

[0146] In this embodiment, the optical delay interferometer 540 includes a substrate 510, and a waveguide 520 and a waveguide 530 formed in the substrate 510. The substrate 510 may be a semiconductor substrate such as a silicon substrate.

[0147] The input light branches into the waveguide 520 and the waveguide 530 at the branch point. The first signal light propagating through the waveguide 520 and the second signal light propagating through the waveguide 530 are multiplexed and then output from the optical delay interferometer 540. The delay time difference τ between the waveguide 520 and the waveguide 530 is adjusted so as to satisfy the relationship of the above-mentioned formula 8.

[0148] In this embodiment, an electrode 526 is disposed in a portion of the waveguide 520. By adjusting the voltage applied to the electrode 526, the phase of the light passing through the waveguide 520 can be finely adjusted.

[0149] According to the present embodiment, the delay time difference τ is adjusted by adjusting the distance between the waveguide 520 and the waveguide 530 and / or the voltage applied to the electrode 526. This allows the operating point of the optical delay interferometer 540 to be adjusted. The delay time difference τ may be adjusted during calibration or in real time.

[0150] In addition, in other embodiments, the electrode 526 may be disposed on the waveguide 530. Also, the optical delay interferometer 540 may not have the electrode 526.

[0151] 6 is a schematic diagram showing an example of an internal configuration of an optical delay interferometer 640. In this embodiment, the optical delay interferometer 640 includes a substrate 610, a waveguide 620 to which input light is input, a ring resonator 630 disposed adjacent to the waveguide 620, and an electrode 636 disposed in a part of the ring resonator 630. The substrate 610 may be a semiconductor substrate such as a silicon substrate.

[0152] Input light incident from the input terminal propagates through the waveguide 620 and reaches the ring resonator 630. A portion of the input light is then introduced into the ring resonator 630. The input / output characteristics of the ring resonator 630 are set so that the length of the ring is an integer multiple of the wavelength of the input light in the ring medium.

[0153] By using the ring resonator 630, the output current characteristic with respect to the optical frequency becomes steeper near the operating point. The light passing through the waveguide 620 is output from the optical delay interferometer 640 and input to the optical receiver 350. The optical phase in the ring resonator 630 is adjusted by the voltage applied to the electrode 636. This allows the operating point of the optical delay interferometer 640 to be adjusted.

[0154] 7 shows an example of an internal configuration of the signal processing unit 370. In this embodiment, the signal processing unit 370 includes a histogram generating unit 244, a standard deviation calculating unit 246, and a calibration unit 710.

[0155] In this embodiment, the calibration unit 710 performs various calibration processes. As described above, the output current i of the optical receiver 350 is approximated by Equation 13. Therefore, the calibration unit 710 performs calibration processes of the phase noise evaluation device 320 using signal light with known phase noise. As a result, the receiving sensitivity of the optical receiver 350 and the noise of the electrical circuit of the optical receiver 350 are calibrated.

[0156] For example, the variance of the differential phase noise is derived by subtracting the variance of the electrical circuit noise from the variance of the received signal. Moreover, what is measured by the above-mentioned derivation method is the intensity noise corresponding to the statistical distribution of the phase noise. Therefore, the above-mentioned various variances and the measurement results such as the standard deviation derived from the variances can be calibrated in advance based on a known optical phase noise. The same applies when an optical ring resonator is used.

[0157] 8 shows an example of a system configuration of the phase noise evaluation apparatus 820. In this embodiment, the phase noise evaluation apparatus 820 differs from the phase noise evaluation apparatus 320 in that it includes an optical receiver 850, an AD converter 860, and an optical phase control section 880. According to this embodiment, the input light is branched at a branch point into a first light that enters the optical delay interferometer 340 and a second light that enters the optical receiver 850. Furthermore, in this embodiment, the phase noise evaluation apparatus 820 differs from the phase noise evaluation apparatus 320 in that it includes a signal processing section 870 instead of the signal processing section 370. With respect to features other than the above differences, the phase noise evaluation apparatus 820 may have a configuration similar to that of the phase noise evaluation apparatus 320.

[0158] In this embodiment, the optical receiver 850 converts the input second light into an electrical signal. In this embodiment, the AD converter 860 converts the electrical signal output by the optical receiver 850 from an analog signal to a digital signal. This provides information indicating a measured value of the optical power of the input light.

[0159] In this embodiment, the signal processing unit 870 obtains information indicating a measurement value of the optical power of the input light from the AD converter 860. The signal processing unit 870 normalizes the differential phase of the input light using the measurement value of the optical power of the input light. Furthermore, the signal processing unit 870 derives the degree of variation in the differential phase using the normalized differential phase.

[0160] In this embodiment, the optical phase control unit 880 obtains an electrical signal corresponding to the output light of the optical delay interferometer 340 from the optical receiver 350. The optical phase control unit 880 adjusts the operating point of the optical delay interferometer 340 based on the electrical signal.

[0161] The optical phase control unit 880 adjusts the operating point of the optical delay interferometer 340 so that the point at which the ratio of the amount of fluctuation in the output current to the amount of fluctuation in the optical frequency becomes larger than a predetermined value becomes the operating point of the optical delay interferometer 340. The optical phase control unit 880 may adjust the operating point of the optical delay interferometer 340 so that the point at which the ratio of the amount of fluctuation in the output current to the amount of fluctuation in the optical frequency becomes substantially maximum becomes the operating point of the optical delay interferometer 340.

[0162] The optical frequency vs. output current characteristic of the optical delay interferometer 340 is sinusoidal with respect to the optical frequency, and the period is 1 / τ. Therefore, in the graph of the optical frequency vs. output current characteristic, when the point where the sinusoidal wave crosses 0 is set as the operating point, it can be seen that the ratio of the fluctuation amount of the output current to the fluctuation amount of the optical frequency is approximately maximized.

[0163] Therefore, the optical phase control unit 880 may determine the position where the average value of the output current is 0 as the operating point of the optical delay interferometer 340. In this case, the optical frequency of the optical frequency vs. output current characteristic (that is, a graph in which the vertical axis is the output current and the horizontal axis is the optical frequency) can be considered as being replaced with the differential phase, so that the fluctuation in the differential phase directly becomes the fluctuation in the output current.

[0164] The AD converter 860 may be an example of an optical power information acquiring section. The signal processing section 870 may be an example of an optical power information acquiring section. The optical phase control section 880 may be an example of an adjusting section.

[0165] (An example of another embodiment) In the present embodiment, an example of the optical phase control unit 880 has been described in which the optical phase control unit 880 detects the average value of the output current of the optical receiver 350 and sets the operating point of the optical delay interferometer 340 so that the average value becomes 0. However, the optical phase control unit 880 is not limited to the present embodiment.

[0166] In another embodiment, when the operating point of the optical delay interferometer 340 is optimized, the peak-to-peak value or amplitude of the output current of the optical receiver 350 is maximized. Therefore, the optical phase control unit 880 may detect the peak-to-peak value of the output current of the optical receiver 350, and set the operating point of the optical delay interferometer 340 so that this value is maximized. Similarly, the optical phase control unit 880 may detect the value of the amplitude of the output current of the optical receiver 350, and set the operating point of the optical delay interferometer 340 so that this value is maximized.

[0167] 9 illustrates an example of the internal configuration of the signal processing unit 870. In this embodiment, the signal processing unit 870 includes a histogram generating unit 244, a standard deviation calculating unit 246, a calibration unit 710, and a normalization unit 930.

[0168] In this embodiment, the normalization unit 930 obtains information indicating the measurement value of the optical power of the input light from the AD converter 860. The normalization unit 930 normalizes the differential phase of the input light using the measurement value of the optical power of the input light. The normalization unit 930 outputs information indicating the normalized differential phase of the input light to the histogram generation unit 244.

[0169] In this embodiment, the histogram generating section 244 generates a histogram of the differential phase using the normalized differential phase. In this embodiment, the standard deviation calculating section 246 derives the standard deviation of the differential phase using the histogram generated based on the normalized differential phase.

[0170] 10 illustrates an example of an internal configuration of the optical delay interferometer 1040. In this embodiment, the optical delay interferometer 1040 differs from the optical delay interferometer 340 in that a semi-transparent mirror 1060 is provided for splitting input light and inputting a part of the input light to the optical receiver 850. In this embodiment, the optical delay interferometer 1040 also differs from the optical delay interferometer 340 in that the voltage applied to the optical phase adjuster 436 is controlled by the optical phase control unit 880.

[0171] 11 illustrates an example of an internal configuration of the optical delay interferometer 1140. In this embodiment, the optical delay interferometer 1140 differs from the optical delay interferometer 540 in that a waveguide 1160 is provided for branching input light and inputting a part of the input light to the optical receiver 850. In this embodiment, the optical delay interferometer 1140 also differs from the optical delay interferometer 540 in that a voltage applied to the electrode 526 is controlled by an optical phase control unit 880.

[0172] 12 illustrates an example of an internal configuration of the optical delay interferometer 1240. In this embodiment, the optical delay interferometer 1240 differs from the optical delay interferometer 640 in that a waveguide 1260 is provided for branching input light and inputting a part of the input light to the optical receiver 850. In this embodiment, the optical delay interferometer 1240 also differs from the optical delay interferometer 640 in that a voltage applied to the electrode 636 is controlled by an optical phase control unit 880.

[0173] 13 illustrates an example of an internal configuration of an optical delay interferometer 1340. In this embodiment, the optical delay interferometer 1340 differs from the optical delay interferometer 340 in that a balanced optical receiver 1350 is used instead of the optical receiver 350. This makes it possible to suppress intensity noise contained in the signal light.

[0174] The balanced optical receiver 1350 includes an optical receiver 1352, an optical receiver 1354, and a differential processing unit 1356. The optical receiver 1352 receives a first output light obtained by multiplexing a first signal light transmitted through the semi-transparent mirror 424 and a second signal light reflected by the semi-transparent mirror 424. The optical receiver 1354 receives a second output light obtained by multiplexing the first signal light reflected by the semi-transparent mirror 424 and the second signal light transmitted through the semi-transparent mirror 424. The differential processing unit 1356 outputs an electrical signal corresponding to the difference between the output of the optical receiver 1352 and the output of the optical receiver 1354 to the AD converter 360.

[0175] 14 illustrates an example of a circuit configuration of a balanced optical receiver 1350. In this embodiment, the balanced optical receiver 1350 includes a photodiode 1452 and a photodiode 1454 connected in series. The balanced optical receiver 1350 outputs an electrical signal from a node 1456 between the photodiode 1452 and the photodiode 1454.

[0176] 15 illustrates an example of an internal configuration of an optical delay interferometer 1540. In this embodiment, the optical delay interferometer 1540 differs from the optical delay interferometer 540 in that a balanced optical receiver 1350 is used instead of the optical receiver 350. This can suppress intensity noise contained in the signal light.

[0177] (Overview of communication system 1600) 16 is a schematic diagram showing an example of a system configuration of a communication system 1600. In this embodiment, the details of the communication system 1600 will be described by taking as an example a case in which an information signal is transmitted by an optical signal transmitting device 110 propagating through an optical transmission line 10 and reaching an optical signal receiving device 1620.

[0178] In this embodiment, the communication system 1600 may have a configuration similar to that of the communication system 100, except that the communication system 1600 has a configuration for detecting polarization fluctuation. Regarding the details of the communication system 1600, a description of the configuration similar to that of the communication system 100 may be omitted.

[0179] In this embodiment, the communication system 1600 includes, for example, an optical signal transmitting device 110 and an optical signal receiving device 1620. In this embodiment, the optical signal receiving device 1620 includes a demultiplexer 1640, an optical receiver 1650, an AD converter 1660, a signal processing unit 1670, and a status monitoring device 1680.

[0180] In this embodiment, the optical signal receiving device 1620 receives the signal light propagated through the optical transmission line 10. The optical signal receiving device 120 demodulates the received optical signal and generates an information signal.

[0181] As described above, for example, if a sudden abnormality occurs in the optical transmission line 10 while the signal light is propagating through the optical transmission line 10, a sudden polarization fluctuation occurs in the signal light. In the communication system 100, the phase noise evaluation unit 240, the phase noise evaluation device 320, the phase noise evaluation device 820, or a modified example thereof performs statistical processing on the measurement results of the phase fluctuation, thereby evaluating the phase noise occurring in the communication system 100.

[0182] However, compared with phase noise, phase fluctuations caused by polarization fluctuations tend to occur suddenly, and since the phase fluctuations that occur suddenly are unlikely to be reflected in the results of the above statistical processing, it is difficult to detect phase fluctuations caused by polarization fluctuations using the phase noise evaluating section 240, the phase noise evaluating device 320, the phase noise evaluating device 820, or their modified examples.

[0183] Therefore, according to this embodiment, the optical signal receiving device 1620 constantly measures the phase fluctuation occurring in the communication system 1600. The optical signal receiving device 1620 detects the phase fluctuation caused by the sudden polarization fluctuation based on the real-time measurement result of the phase noise. For example, the optical signal receiving device 1620 detects an increase in the phase fluctuation in real time and issues an alarm. Details of the information processing in the optical signal receiving device 1620 will be described later.

[0184] In this embodiment, when the signal light includes multiple optical signals with different wavelengths, the demultiplexer 1640 demultiplexes the multiple optical signals by wavelength. The optical signal (sometimes referred to as a received signal) received by the optical signal receiving device 1620 includes, for example, light of a first wavelength (sometimes referred to as a communication optical signal) used for transmitting an information signal and light of a second wavelength (sometimes referred to as a supervisory optical signal) used for detecting polarization fluctuation. The value of the first wavelength is different from the value of the second wavelength. The supervisory optical signal may be unmodulated. The demultiplexer 1640 outputs the communication optical signal to the optical receiver 1650. The demultiplexer 1640 outputs the supervisory optical signal to the status monitoring device 1680.

[0185] In this embodiment, the optical receiver 1650 converts an optical signal into an electrical signal. The optical receiver 1650 converts, for example, an optical signal for communication into an electrical signal (sometimes referred to as an electrical signal corresponding to the optical signal for communication). The optical receiver 1650 outputs the electrical signal corresponding to the optical signal for communication to the AD converter 1660.

[0186] In this embodiment, the AD converter 1660 converts the electrical signal from an analog signal to a digital signal. The AD converter 1660 generates one or more digital signals corresponding to one or more sampling points (sometimes referred to as samples) by, for example, sampling the electrical signal. The AD converter 1660 converts, for example, an electrical signal corresponding to the optical signal for communication into a digital signal (sometimes referred to as a digital signal corresponding to the optical signal for communication). The AD converter 1660 outputs the digital signal corresponding to the optical signal for communication to the signal processing unit 1670.

[0187] In this embodiment, the signal processing unit 1670 demodulates a received signal transmitted by a signal light to generate an information signal. The method for generating an information signal from a received signal is not particularly limited. The signal processing unit 1670 may perform various digital signal processing for demodulating and compensating the received signal. The signal processing unit 1670 may perform error correction processing, decoding processing, and the like.

[0188] In this embodiment, the state monitoring device 1680 analyzes light input to the state monitoring device 1680 (sometimes referred to as input light) to monitor the state of the optical transmission line 10 and / or the state of the signal light propagated through the optical transmission line 10. The state monitoring device 1680, for example, analyzes the phase fluctuation of the input light to evaluate at least one of (i) the presence and / or the degree of phase noise, and (ii) the presence and / or the degree of polarization fluctuation. In this way, the state monitoring device 1680 can detect, for example, polarization fluctuation of the signal light propagated through the optical transmission line 10.

[0189] The state monitor 1680 obtains information indicating the differential phase of the input light to be evaluated at each of, for example, one or more time points. The differential phase represents the difference in phase of the input light at two time points adjacent in time among the one or more time points. The time interval between two time points adjacent in time among the one or more time points may be approximately constant.

[0190] The length of the time interval is not particularly limited, but may be the length of a symbol time of a signal transmitted by the input light, may be less than or equal to the length of the symbol time, or may be greater than or equal to the length of the symbol time. In one embodiment, the time interval is set such that the difference between the symbol time and the time interval is a predetermined value. In another embodiment, the time interval is set such that the difference between the symbol time and the time interval is less than or equal to a predetermined value.

[0191] The state monitor 1680, for example, judges whether or not the differential phase at at least a part of one or more time points satisfies a predetermined condition. When it is judged that the differential phase at at least a part of one or more time points satisfies the predetermined condition, the state monitor 1680 outputs, for example, information indicating that polarization fluctuation has occurred in the signal light. Details of the state monitor 1680 will be described later.

[0192] (Specific configuration of each part of communication system 1600) Like each unit of communication system 100, each unit of communication system 1600 may be realized by hardware, software, or both. When at least a part of the components constituting communication system 1600 is realized by software, the components realized by the software may be realized by starting a program that specifies the operation of the components in an information processing device of a general configuration.

[0193] In the information processing device, the data processing device or storage device may store a program. The program may be stored in a non-transitory computer-readable recording medium. The program is executed by a processor to cause the information processing device to perform operations defined by the program.

[0194] The above program may be a program for causing a computer to function as the optical signal receiving device 1620 or a part thereof. The above program may be a program for causing a computer to execute an information processing method in the optical signal receiving device 1620 or a part thereof. Examples of parts of the optical signal receiving device 1620 include a signal processing unit 1670 and a status monitoring device 1680.

[0195] The information processing method may be a detection method for detecting polarization fluctuation of signal light propagated through an optical transmission line. The detection method may, for example, include a differential phase information acquisition step of acquiring information indicating a differential phase of input light to be evaluated at each of one or more time points. The detection method may, for example, include a determination step of determining whether or not the differential phase at at least a part of the one or more time points satisfies a predetermined condition. The detection method may include an output step of outputting information indicating that polarization fluctuation has occurred in the signal light when it is determined that the differential phase at at least a part of the one or more time points satisfies the predetermined condition.

[0196] The above-mentioned predetermined condition may include a first condition that the magnitude of the differential phase at at least one of the one or more time points is equal to or greater than a predetermined first threshold. The above-mentioned predetermined condition may include a second condition that the number of time points at which the magnitude of the differential phase at the time point is equal to or greater than the first threshold among a plurality of time points included in an evaluation period, which is at least a part of the one or more time points and has a predetermined length, is equal to or greater than a predetermined second threshold. The above-mentioned predetermined condition may include a third condition that the ratio of the number of time points at which the magnitude of the differential phase at the time point is equal to or greater than the first threshold to the number of time points included in the evaluation period is equal to or greater than a predetermined third threshold. The above-mentioned predetermined condition may include a fourth condition that the movement angle at the fluctuation frequency of the trajectory on the Poincaré sphere, which is derived from the magnitude of the differential phase at each of the one or more time points, is equal to or greater than a predetermined fourth threshold. The above-mentioned predetermined condition may include a fifth condition that the movement angular velocity at the variation frequency of the trajectory on the Poincaré sphere is equal to or greater than a predetermined fifth threshold value.

[0197] The above-mentioned predetermined conditions may include a combination of at least two conditions selected from the group consisting of the first condition, the second condition, the third condition, the fourth condition, and the fifth condition. The first threshold, the second threshold, the third threshold, the fourth threshold, and the fifth threshold may be determined independently. The first threshold, the second threshold, the third threshold, the fourth threshold, and the fifth threshold may be different values ​​from each other, or at least two of them may be the same. An outline of a procedure for determining each threshold will be described later.

[0198] The communication system 1600 may be an example of a detection device, an optical receiving device, or an optical communication system. The optical signal receiving device 1620 may be an example of a detection device or an optical receiving device. The splitter 1640 may be an example of a splitting section. The optical receiver 1650 may be an example of an opto-electrical conversion section. The AD converter 1660 may be an example of an analog-digital conversion section. The signal processing section 1670 may be an example of a demodulation section. The status monitoring device 1680 may be an example of a detection device. The optical signal transmitting device 110 may be an example of an optical transmitting device. The optical signal may be an example of light. The one or more sampling points may be an example of one or more time points. The monitoring optical signal may be an example of light of a second wavelength or input light.

[0199] (An example of another embodiment) In this embodiment, in order to facilitate understanding of the communication system 1600, the details of the communication system 1600 have been described by taking as an example a case in which an information signal is transmitted by an optical signal transmitting device 110 propagating through an optical transmission line 10 and reaching an optical signal receiving device 1620. However, the communication system 1600 is not limited to this embodiment. For example, various multiplexing techniques are known in the field of optical communication. Therefore, according to another embodiment, various multiplexing techniques may be applied to the above-described communication system 1600.

[0200] Examples of multiplexing techniques include optical wavelength multiplexing (sometimes referred to as wavelength division multiplexing), space division multiplexing, etc. Optical wavelength multiplexing allows a single optical fiber to be used to simultaneously transmit multiple optical signals with different wavelengths. Examples of space division multiplexing techniques include a technique using a multicore optical fiber in which multiple cores are arranged in a single cladding, and a technique using a multimode optical fiber designed to be capable of propagating multiple modes of light.

[0201] In the present embodiment, the details of the communication system 1600 have been described by taking as an example a case in which the communication system 1600 includes a configuration for detecting polarization fluctuation in addition to the same configuration as the communication system 100. However, the communication system 1600 is not limited to the present embodiment. In other embodiments, the communication system 1600 may not include at least a part of the configuration of the communication system 100. For example, the communication system 1600 may not include at least one of the amplitude noise evaluating unit 230 and the phase noise evaluating unit 240.

[0202] In this embodiment, the communication system 1600 has been described in detail by taking as an example a case where the signal light includes an optical signal used for detecting polarization fluctuation as a monitoring optical signal. However, the communication system 1600 is not limited to this embodiment. In other embodiments, the signal light may include various monitoring optical signals having different wavelengths. Examples of objects to be monitored, inspected, or evaluated using the monitoring optical signal include the state of the optical transmission line 10, the state of the signal light propagated through the optical transmission line 10, and the like.

[0203] Examples of the state of the optical transmission line 10 include the state of the electromagnetic environment around the optical transmission line 10, the state of the electric field inside or around the optical transmission line 10, the vibration state of the optical transmission line 10, the bending state of the optical transmission line 10, and the connection state of the optical transmission line 10 (for example, the degree of misalignment of the connection between two optical fiber core materials that make up the optical fiber). Examples of the state of the electromagnetic environment around the optical transmission line 10 include the fluctuation state of the electromagnetic environment. Examples of the state of the electric field inside or around the optical transmission line 10 include the fluctuation state of the electric field. Examples of the state of the optical signal include the intensity fluctuation, amplitude fluctuation, phase fluctuation, and polarization fluctuation of the optical signal.

[0204] In this embodiment, the details of the communication system 1600 have been described by taking as an example a case where the optical signal transmitting device 110 transmits an optical signal and the optical signal receiving device 1620 receives an optical signal. However, the communication system 1600 is not limited to this embodiment. In another embodiment, at least one of the optical signal transmitting device 110 and the optical signal receiving device 1620 may be a transmitting / receiving device having a function of transmitting an optical signal and a function of receiving an optical signal. For example, the optical signal transmitting device 110 includes at least one component similar to the component of the optical signal receiving device 1620. For example, the optical signal receiving device 1620 includes at least one component similar to the component of the optical signal transmitting device 110.

[0205] 17 shows an example of an internal configuration of the optical signal transmission device 110. In this embodiment, the optical signal transmission device 110 includes a communication optical signal output unit 1722, a supervisory optical signal output unit 1724, and a multiplexer 1730, for example.

[0206] In this embodiment, the communication optical signal output unit 1722 modulates light of a first wavelength based on an information signal and outputs the communication optical signal. In this embodiment, the monitor optical signal output unit 1724 outputs one or more monitor optical signals. Each of the one or more monitor optical signals is generated using light of a wavelength different from that of the communication optical signal. Each of the one or more monitor optical signals may be generated using light of wavelengths different from each other. In this embodiment, the multiplexer 1730 multiplexes the communication optical signal output by the communication optical signal output unit 1722 and the monitor optical signal output by the monitor optical signal output unit 1724 to generate signal light.

[0207] (An example of another embodiment) In this embodiment, for the purpose of facilitating understanding of the communication system 1600, the details of the optical signal transmission device 110 have been described by taking as an example a case in which the optical signal transmission device 110 outputs a single signal light. However, as described above, various multiplexing techniques are known in the field of optical communication. Therefore, according to another embodiment, various multiplexing techniques may be applied to the above-described communication system 1600. When optical wavelength multiplexing technology is applied to the communication system 1600, the communication optical signal output unit 1722 may output a plurality of communication optical signals having different wavelengths.

[0208] 18 illustrates an example of the internal configuration of the state monitoring device 1680. In this embodiment, the state monitoring device 1680 includes, for example, an optical delay interferometer 340, an optical receiver 350, an AD converter 360, and a signal processing unit 1870. In this embodiment, the optical receiver 350 includes, for example, a photoelectric conversion element 1852 and an integration circuit 1854.

[0209] In this embodiment, the photoelectric conversion element 1852 converts an optical signal into an electrical signal. More specifically, the photoelectric conversion element 1852 converts the output light of the optical delay interferometer 340 into an electrical signal. The photoelectric conversion element 1852 converts, for example, a photoelectrically converted photocurrent into a voltage using a load resistor to generate the electrical signal. The photoelectric conversion element 1852 outputs the electrical signal to the integration circuit 1854.

[0210] The output current of the photoelectric conversion element 1852 indicates the differential phase of the input light, similar to the output current of the optical receiver 350 described in relation to Fig. 3. As described above, the input light in this embodiment is the monitoring optical signal input to the status monitoring device 1680.

[0211] In this embodiment, the integrating circuit 1854 outputs a voltage having a waveform equal to the time integral of the waveform of the input voltage. The output voltage of the integrating circuit 1854 is proportional to the integral value of the input voltage to the integrating circuit 1854. More specifically, the integrating circuit 1854 receives the electrical signal output from the photoelectric conversion element 1852, and outputs a voltage having a waveform equal to the time integral of the waveform of the electrical signal. In this way, an electrical signal corresponding to the output light of the optical delay interferometer 340 is generated. The integrating circuit 1854 outputs the electrical signal to the AD converter 360.

[0212] The time constant of the integrating circuit 1854 is determined based on, for example, the maximum speed of phase fluctuation accompanying the expected polarization fluctuation. The time constant of the integrating circuit 1854 may be a time constant corresponding to the above-mentioned maximum speed. For example, when the occurrence of polarization fluctuation of about 10 kHz is expected, the time constant of the integrating circuit 1854 is set to about 100 μs. Similarly, the cutoff frequency of the integrating circuit 1854 is set to about 1.59 kHz.

[0213] The time constant of the integrating circuit 1854 may be 10 to 1000 μs, 50 to 500 μs, 75 to 150 μs, or 80 to 120 μs. The cutoff frequency of the integrating circuit 1854 may be 0.1 to 100 kHz, 0.5 to 50 kHz, 1 to 20 kHz, or 1 to 10 kHz.

[0214] The integrating circuit 1854 may be an amplifier or a low-pass filter that processes the electrical signal output by the photoelectric conversion element 1852, or may be a part of the components that constitute the amplifier or the low-pass filter. It may be incorporated in the photoelectric conversion element 1852, or may be disposed in the subsequent stage of the photoelectric conversion element 1852.

[0215] In this embodiment, the AD converter 360 converts the electrical signal output by the optical receiver 350 from an analog signal to a digital signal. This generates one or more digital signals corresponding to the differential phases at one or more sampling points. The AD converter 360 outputs the digital signals to the signal processor 1870.

[0216] In this embodiment, the sampling rate of the AD converter 360 is set to a value sufficient for sampling a signal within the band of the optical receiver 350. For example, the sampling rate of the AD converter 360 is set to about 5 to 10 times the bandwidth of the optical receiver 350.

[0217] In this embodiment, the signal processing unit 1870 obtains one or more sampled differential phase signals from the AD converter 360. The signal processing unit 1870 evaluates the state of the optical transmission line 10 and / or the state of the signal light propagated through the optical transmission line 10 based on the differential phase at one or more time points indicated by the one or more differential phase signals. The signal processing unit 1870 evaluates, for example, at least one of (i) the presence and / or the degree of phase noise, and (ii) the presence and / or the degree of polarization fluctuation. In this way, the signal processing unit 1870 can detect, for example, polarization fluctuation of the signal light propagated through the optical transmission line 10.

[0218] The signal processing unit 1870, for example, determines whether or not the differential phase at at least a part of one or more time points satisfies a predetermined condition. When it is determined that the differential phase at at least a part of one or more time points satisfies the predetermined condition, the signal processing unit 1870 outputs, for example, information indicating that polarization fluctuation has occurred in the signal light.

[0219] The form in which the signal processing unit 1870 is provided is not particularly limited. The signal processing unit 1870 may be an integrated circuit (IC), a large scale integrated circuit (LSI), a system LSI, a system on chip, or a microprocessor, or may be a device constructed by combining these. The signal processing unit 1870 will be described in detail later.

[0220] The photoelectric conversion element 1852 may be an example of a photoelectric conversion unit. The integration circuit 1854 may be an example of an integration unit. The signal processing unit 1870 may be an example of a detection device. The one or more sampled differential phase signals may be an example of information indicating the differential phase of the input light at each of one or more time points. The one or more sample points may be an example of one or more time points.

[0221] (An example of another embodiment) In the present embodiment, the state monitoring device 1680 has been described in detail by taking as an example a case in which the state monitoring device 1680 includes the optical delay interferometer 340. However, the state monitoring device 1680 is not limited to this embodiment. In other embodiments, the state monitoring device 1680 may include an optical delay interferometer having any configuration instead of the optical delay interferometer 340. For example, the state monitoring device 1680 includes the optical delay interferometer 540, the optical delay interferometer 640, the optical delay interferometer 1040, the optical delay interferometer 1140, the optical delay interferometer 1240, or the optical delay interferometer 1340.

[0222] In the present embodiment, the state monitoring device 1680 has been described in detail by taking as an example a case in which the state monitoring device 1680 includes the optical receiver 350. However, the state monitoring device 1680 is not limited to this embodiment. In other embodiments, the state monitoring device 1680 may include an optical receiver having any configuration instead of the optical receiver 350. For example, the state monitoring device 1680 includes a balanced optical receiver 1350.

[0223] In this embodiment, the state monitoring device 1680 has been described in detail by taking as an example a case where the optical receiver 350 includes the integrating circuit 1854. However, the state monitoring device 1680 is not limited to this embodiment. In other embodiments, the integrating circuit 1854 may be arranged outside the optical receiver 350. For example, the integrating circuit 1854 is arranged in a stage subsequent to the optical receiver 350. The integrating circuit 1854 may be arranged inside a device arranged in a stage subsequent to the optical receiver 350. Examples of the above-mentioned device include an integrating circuit and a device having an integral characteristic. Examples of the device having an integral characteristic include an amplifier and a low-pass filter.

[0224] 19 illustrates an example of an internal configuration of the signal processing unit 1870. In this embodiment, the signal processing unit 1870 includes a histogram generating unit 244, a standard deviation calculating unit 246, and a calibration unit 710. In this embodiment, the signal processing unit 1870 includes an increase detecting unit 1922, a frequency analyzing unit 1924, a movement angle deriving unit 1926, a movement angular velocity deriving unit 1928, a polarization fluctuation detecting unit 1930, and an information output unit 1940.

[0225] In this embodiment, the increase detector 1922 obtains one or more sampled differential phase signals from the AD converter 360. As described above, each of the one or more differential phase signals indicates a differential phase at each of one or more time points. The increase detector 1922 analyzes the one or more differential phase signals in the time domain.

[0226] For example, the increase detector 1922 compares the magnitude of the differential phase at each of one or more time points with a first threshold value that is determined in advance. This allows the increase detector 1922 to determine whether the magnitude of the differential phase at each of one or more time points is equal to or greater than the first threshold value. The increase detector 1922 outputs information indicating the determination result to the polarization fluctuation detector 1930.

[0227] In this embodiment, the frequency analysis unit 1924 obtains one or more sampled differential phase signals from the AD converter 360. The frequency analysis unit 1924 analyzes the one or more differential phase signals in the frequency domain (sometimes referred to as frequency analysis).

[0228] For example, the frequency analysis unit 1924 performs a Fourier transform (e.g., a fast Fourier transform) on one or more differential phase signals. This derives the fluctuation frequency of the phase difference δ(t) between the orthogonal polarization modes Ex(t) and Ey(t) of the signal light propagating in the z direction. Furthermore, the spectral components obtained by the Fourier transform indicate the amplitude value of the fluctuation.

[0229] Specifically, the results of the Fourier transform are analyzed, and the frequency showing the prominent peak value and the frequency of other prominent components are determined as the fluctuation frequency. For example, the fluctuation of the amplitude value is observed while changing the frequency of the measurement data obtained by the Fourier transform. The frequency at which the amplitude value fluctuates suddenly is determined as the fluctuation frequency.

[0230] In this embodiment, the frequency analysis unit 1924 outputs information indicating the analysis result to the polarization fluctuation detection unit 1930. The frequency analysis unit 1924 may output information indicating the analysis result to the movement angle derivation unit 1926 and / or the movement angular velocity derivation unit 1928 as necessary. Examples of the information indicating the analysis result include a fluctuation frequency and a fluctuation amplitude value. The fluctuation amplitude value is a parameter related to the movement angle, and the movement angular velocity is derived based on the fluctuation amplitude value and the fluctuation frequency.

[0231] In this embodiment, the movement angle derivation unit 1926 acquires one or more sampled differential phase signals from the AD converter 360. The movement angle derivation unit 1926 derives a movement angle at a fluctuation frequency of a trajectory on the Poincaré sphere, which is derived from the magnitude of the differential phase at each of one or more time points. Specifically, the fluctuation frequency of the trajectory on the Poincaré sphere is derived based on the result of the Fourier transform described above. In addition, the movement angle is derived by calculating a peak-to-peak value (pp value) from the vibration amplitude value (peak value) of the Fourier transform. The movement angle derivation unit 1926 outputs information indicating the derivation result to the polarization fluctuation detection unit 1930.

[0232] In this embodiment, the movement angular velocity derivation unit 1928 acquires one or more sampled differential phase signals from the AD converter 360. The movement angular velocity derivation unit 1928 derives a movement angular velocity at a fluctuation frequency of a trajectory on the Poincaré sphere, which is derived from the magnitude of the differential phase at each of one or more time points. The movement angular velocity is derived based on the movement angle and the fluctuation frequency of the trajectory on the Poincaré sphere described above. The movement angular velocity is derived as, for example, movement angle (pp value) × 2 × fluctuation frequency. The movement angular velocity derivation unit 1928 outputs information indicating the derivation result to the polarization fluctuation detection unit 1930.

[0233] In this embodiment, the polarization fluctuation detection unit 1930 evaluates the presence or absence and / or the degree of polarization fluctuation. For example, the polarization fluctuation detection unit 1930 detects polarization fluctuation. If polarization fluctuation is detected, it can be evaluated that polarization fluctuation is occurring and / or the degree of polarization fluctuation is relatively large.

[0234] For example, the polarization fluctuation detection unit 1930 determines whether or not the differential phase at least at a part of one or more time points satisfies a predetermined condition. If it is determined that the differential phase at least at a part of one or more time points satisfies the predetermined condition, the polarization fluctuation detection unit 1930 outputs information indicating that the polarization fluctuation has been detected to 1940.

[0235] The predetermined condition may include a first condition that the magnitude of the differential phase at at least one of the one or more time points is equal to or greater than a predetermined first threshold. The predetermined condition may include a second condition that the number of time points at which the magnitude of the differential phase at the time point is equal to or greater than the first threshold among a plurality of time points included in an evaluation period, which is at least a portion of the one or more time points and has a predetermined length, is equal to or greater than a predetermined second threshold. The predetermined condition may include a third condition that the ratio of the number of time points at which the magnitude of the differential phase at the time point is equal to or greater than the first threshold to the number of time points included in the evaluation period is equal to or greater than a predetermined third threshold.

[0236] The predetermined conditions may include a fourth condition that a movement angle at a fluctuation frequency of the trajectory on the Poincaré sphere, which is derived from the magnitude of the differential phase at each of the one or more time points, is equal to or greater than a fourth predetermined threshold value. The predetermined conditions may include a fifth condition that a movement angular velocity at a fluctuation frequency of the trajectory on the Poincaré sphere is equal to or greater than a fifth predetermined threshold value.

[0237] The above-mentioned predetermined conditions may include a combination of at least two conditions selected from the group consisting of a first condition, a second condition, a third condition, a fourth condition, and a fifth condition. The first threshold, the second threshold, the third threshold, the fourth threshold, and the fifth threshold may be determined independently. The first threshold, the second threshold, the third threshold, the fourth threshold, and the fifth threshold may be different values ​​from each other, or at least two of them may be the same.

[0238] At least one of the first threshold, the second threshold, the third threshold, the fourth threshold, and the fifth threshold may be determined based on the polarization fluctuation tolerance of the communication system 1600 or the optical signal receiving device 1620. For example, at least one of the first threshold, the fourth threshold, and the fifth threshold is set to ka times (ka is a positive number. ka may be equal to or less than 1) the polarization fluctuation tolerance defined in the specifications of the equipment mounted on the communication system 1600 or the optical signal receiving device 1620. As described above, the first threshold, the fourth threshold, and the fifth threshold may be different from each other. At least one of the second threshold and the third threshold may be determined by a pre-test, a test during a trial run, or the like.

[0239] In one embodiment, the polarization fluctuation detection unit 1930 acquires information indicating a determination result for each of one or more sample points from the increase detection unit 1922. The polarization fluctuation detection unit 1930 determines that the above-mentioned first condition is satisfied when, for example, at least one of the determination results for each of the one or more sample points indicates that the magnitude of the differential phase at the sample point is equal to or greater than a first threshold value. When the first condition is satisfied, the polarization fluctuation detection unit 1930 may determine that a polarization fluctuation is detected.

[0240] According to the above embodiment, even if the influence on the transmission characteristics is small in reality, the first condition may be satisfied. For example, when the magnitude of the differential phase at a specific sampling point is a statistically specific value, the above first condition may be satisfied and the polarization fluctuation may be detected. In this case, the influence of the detected polarization fluctuation on the transmission characteristics may be very small.

[0241] Therefore, the polarization fluctuation detection unit 1930 may detect the polarization fluctuation by using the determination results for a plurality of sample points included in a period (sometimes called an evaluation period) having a predetermined length, among the determination results for each of one or more sample points. This improves the detection accuracy of the polarization fluctuation.

[0242] For example, the polarization fluctuation detection unit 1930 determines that the second condition is satisfied when the number of sample points whose differential phase magnitude is equal to or greater than a first threshold value among the number of sample points included in the evaluation period is equal to or greater than a second threshold value. When the second condition is satisfied, the polarization fluctuation detection unit 1930 may determine that a polarization fluctuation is detected.

[0243] For example, the polarization fluctuation detection unit 1930 determines that the third condition is satisfied when the ratio of the number of sample points whose differential phase magnitude is equal to or greater than the first threshold value to the number of sample points included in the evaluation period is equal to or greater than a third threshold value that is determined in advance. When the third condition is satisfied, the polarization fluctuation detection unit 1930 may determine that a polarization fluctuation is detected.

[0244] In another embodiment, the polarization fluctuation detection unit 1930 acquires information indicating a result of deriving the movement angle at the fluctuation frequency of the trajectory on the Poincaré sphere from the movement angle derivation unit 1926. The polarization fluctuation detection unit 1930 determines that the fourth condition is satisfied when the movement angle is equal to or greater than a fourth threshold value. When the fourth condition is satisfied, the polarization fluctuation detection unit 1930 may determine that a polarization fluctuation is detected.

[0245] In still another embodiment, the polarization fluctuation detection unit 1930 acquires information indicating a derivation result of the movement angular velocity at the fluctuation frequency of the trajectory on the Poincaré sphere from the movement angular velocity derivation unit 1928. The polarization fluctuation detection unit 1930 determines that the fifth condition is satisfied when the movement angle is equal to or greater than a fifth threshold value. When the fifth condition is satisfied, the polarization fluctuation detection unit 1930 may determine that a polarization fluctuation is detected.

[0246] In this embodiment, the information output unit 1940 outputs evaluation information indicating various evaluation results in the signal processing unit 1870. In one embodiment, the evaluation information includes information for evaluating the phase noise of the signal light described in relation to FIG. 2. In another embodiment, the evaluation information includes evaluation information related to polarization fluctuation. Examples of the evaluation information related to polarization fluctuation include information indicating that polarization fluctuation has occurred in the signal light, information indicating that the angular velocity of movement has exceeded a specified angular velocity, information indicating that the angle of movement has exceeded a specified angle, and information indicating that the fluctuation frequency has exceeded a specified frequency. The evaluation information related to polarization fluctuation may be output as an alarm or a flag.

[0247] As described above, the information indicating that polarization fluctuation has occurred in the signal light may be an example of information indicating that the degree of polarization fluctuation is relatively large. Other examples of the evaluation information regarding the polarization fluctuation include information indicating the amount of fluctuation of the polarization fluctuation, and information indicating the absolute value of the amount of fluctuation of the polarization fluctuation. The amount of fluctuation of the movement angle of the trajectory on the Poincaré sphere may be used as the amount of fluctuation of the polarization fluctuation. As described above, the phase fluctuation amplitude width measured by the optical delay interferometer represents an approximate value of the movement angle of the trajectory on the Poincaré sphere.

[0248] The increase detection unit 1922 may be an example of a differential phase information acquisition unit. The frequency analysis unit 1924 may be an example of a differential phase information acquisition unit. The movement angle derivation unit 1926 may be an example of a differential phase information acquisition unit. The movement angular velocity derivation unit 1928 may be an example of a differential phase information acquisition unit. The polarization fluctuation detection unit 1930 may be an example of a determination unit. The information output unit 1940 may be an example of an output unit. The information indicating that a polarization fluctuation has been detected may be an example of information indicating that a polarization fluctuation has occurred in the signal light.

[0249] (An example of another embodiment) In the present embodiment, the details of the signal processing unit 1870 have been described by taking as an example a case in which the signal processing unit 1870 includes the histogram generating unit 244, the standard deviation calculating unit 246, and the calibration unit 710, similarly to the signal processing unit 370. However, the signal processing unit 1870 is not limited to the present embodiment.

[0250] In another embodiment, the signal processing unit 1870 may not include at least one of the histogram generating unit 244, the standard deviation calculating unit 246, and the calibration unit 710. In still another embodiment, the signal processing unit 1870 may include a normalization unit 930, similar to the signal processing unit 870.

[0251] 20 shows an example of information processing in the status monitoring device 1680. According to this embodiment, first, in step 2022 (step may be abbreviated as S), the optical receiver 350 including the integrating circuit 1854 receives the light output from the optical delay interferometer 340. The optical receiver 350 generates an electrical signal corresponding to the light output from the optical delay interferometer 340.

[0252] Next, in S2024, the AD converter 360 samples the electrical signal output from the optical receiver 350. This generates one or more digital signals corresponding to the differential phase at each of the one or more sampling points.

[0253] Furthermore, in S2026, the digital signal output from the AD converter 360 is accumulated in a memory (not shown) arranged in the state monitoring device 1680 or the signal processing unit 1870. The digital signal output from the AD converter 360 is stored in the memory in association with, for example, the identification information of each sample point. For example, the latest N pieces of data (N is an integer equal to or greater than 1) are sequentially accumulated in the memory.

[0254] When the process of S2026 is completed, in S2032, the signal processing unit 1870 judges whether the first condition, the fourth condition, and / or the fifth condition are satisfied. In this way, the presence or absence and / or the degree of polarization fluctuation is evaluated. The signal processing unit 1870 outputs information indicating the judgment result to the information output unit 1940.

[0255] In S2032, the signal processing unit 1870 may determine whether the first condition, the fourth condition, and / or the fifth condition are satisfied using the data stored in the memory in S2026. For example, the signal processing unit 1870 performs a moving average process on the data stored in the memory in S2026, and then determines whether the first condition, the fourth condition, and / or the fifth condition are satisfied. This reduces the influence of noise. The signal processing unit 1870 may sequentially determine whether the first condition, the fourth condition, and / or the fifth condition are satisfied for the sampled data. In this case, after the process of S2024 is completed, the process of S2032 is started before the process of S2026 is completed.

[0256] When the process of S2026 is completed, in S2034, the signal processing unit 1870 judges whether the second condition and / or the third condition is satisfied using the data accumulated in the memory in S2026. This allows the presence or absence and / or the degree of polarization fluctuation to be evaluated. The signal processing unit 1870 outputs information indicating the judgment result to the information output unit 1940.

[0257] When the process of S2026 is completed, in S2036, the histogram generating unit 244 and the standard deviation calculating unit 246 generate information for evaluating the phase noise of the signal light using the data accumulated in the memory in S2026. This allows the presence or absence and / or the degree of phase noise to be evaluated. The standard deviation calculating unit 246 outputs the information for evaluating the phase noise of the signal light to the information output unit 1940.

[0258] In S2042, the information output unit 1940 outputs the evaluation information related to the polarization fluctuation. In addition, in S2044, the information output unit 1940 outputs the evaluation information related to the phase noise. This ends the process.

[0259] 21 illustrates an example of a data table 2100. In this embodiment, the data table 2100 stores evaluation information related to polarization fluctuation. In this embodiment, the data table 2100 has one or more records for each of one or more sample points. Each of the one or more records may be an example of evaluation information at a particular time or sample point.

[0260] In this embodiment, the data table 2100 stores, for each of one or more sample points, the number 2120 of the sample point, a time 2122 corresponding to the sample point, an output value 2124 of the optical receiver 350 at the sample point, a fluctuating frequency 2132 derived by the frequency analysis unit 1924, a moving angle 2134 derived by the moving angle derivation unit 1926, a moving angular velocity 2136 derived by the moving angular velocity derivation unit 1928, success / failure 2140 of each of the first to fifth conditions, and a detection result 2150 of polarization fluctuation in association with each other. Note that the data items of the data table 2100 are not limited to those of this embodiment. For example, in another embodiment, the data table 2100 stores, for each of one or more sample points, the number 2120 or the time 2122 of the sample point and a detection result 2150 of polarization fluctuation in association with each other.

[0261] (An example of another embodiment) In this embodiment, the evaluation information regarding the polarization variation has been described in detail by taking as an example a case where the evaluation information regarding the polarization variation is stored in the data table 2100. However, the evaluation information regarding the polarization variation is not limited to this embodiment. In other embodiments, the evaluation information regarding the polarization variation may be a list of one or more times when the polarization variation is detected.

[0262] 22 shows an example of a computer 3000 in which multiple aspects of the present invention may be embodied in whole or in part. At least a part of the optical signal receiving device 120 may be realized by the computer 3000. At least a part of the phase noise evaluation device 320 may be realized by the computer 3000. At least a part of the optical signal receiving device 1620 may be realized by the computer 3000. At least a part of the status monitoring device 1680 may be realized by the computer 3000.

[0263] A program installed on the computer 3000 may cause the computer 3000 to function as or perform operations associated with an apparatus according to an embodiment of the present invention or one or more "parts" of the apparatus, and / or to perform a process or steps of the process according to an embodiment of the present invention. Such a program may be executed by the CPU 3012 to cause the computer 3000 to perform certain operations associated with some or all of the blocks of the flowcharts and block diagrams described herein.

[0264] The computer 3000 according to this embodiment includes a CPU 3012, a RAM 3014, a GPU 3016, and a display device 3018, which are connected to each other by a host controller 3010. The computer 3000 also includes input / output units such as a communication interface 3022, a hard disk drive 3024, a DVD-ROM drive 3026, and an IC card drive, which are connected to the host controller 3010 via an input / output controller 3020. The computer also includes legacy input / output units such as a ROM 3030 and a keyboard 3042, which are connected to the input / output controller 3020 via an input / output chip 3040.

[0265] The CPU 3012 operates according to a program stored in the ROM 3030 and the RAM 3014, thereby controlling each unit. The GPU 3016 acquires image data generated by the CPU 3012 into a frame buffer or the like provided in the RAM 3014 or into the GPU 3016 itself, and causes the image data to be displayed on the display device 3018.

[0266] The communications interface 3022 communicates with other electronic devices via a network. The hard disk drive 3024 stores programs and data used by the CPU 3012 in the computer 3000. The DVD-ROM drive 3026 reads programs or data from the DVD-ROM 3001 and provides the programs or data to the hard disk drive 3024 via the RAM 3014. The IC card drive reads programs and data from an IC card and / or writes programs and data to an IC card.

[0267] The ROM 3030 stores therein a boot program or the like executed by the computer 3000 upon activation, and / or a program that depends on the hardware of the computer 3000. The input / output chip 3040 may also connect various input / output units to the input / output controller 3020 via a parallel port, a serial port, a keyboard port, a mouse port, etc.

[0268] The programs are provided by a computer-readable storage medium such as a DVD-ROM 3001 or an IC card. The programs are read from the computer-readable storage medium, installed in the hard disk drive 3024, the RAM 3014, or the ROM 3030, which are also examples of computer-readable storage media, and executed by the CPU 3012. Information processing described in these programs is read by the computer 3000, and brings about cooperation between the programs and the various types of hardware resources described above. An apparatus or method may be constructed by realizing an operation or processing of information according to the use of the computer 3000.

[0269] For example, when communication is performed between computer 3000 and an external device, CPU 3012 may execute a communication program loaded in RAM 3014 and instruct communication interface 3022 to perform communication processing based on the processing described in the communication program. Under the control of CPU 3012, communication interface 3022 reads transmission data stored in a transmission buffer area provided in RAM 3014, hard disk drive 3024, DVD-ROM 3001, or a recording medium such as an IC card, and transmits the read transmission data to the network, or writes reception data received from the network to a reception buffer area or the like provided on the recording medium.

[0270] Furthermore, CPU 3012 may cause all or a necessary portion of a file or database stored in an external recording medium such as hard disk drive 3024, DVD-ROM drive 3026 (DVD-ROM 3001), an IC card, etc. to be read into RAM 3014, and perform various types of processing on the data on RAM 3014. CPU 3012 may then write back the processed data to the external recording medium.

[0271] Various types of information, such as various types of programs, data, tables, and databases, may be stored in the recording medium and undergo information processing. The CPU 3012 may perform various types of processing on the data read from the RAM 3014, including various types of operations, information processing, conditional judgment, conditional branching, unconditional branching, information search / replacement, etc., as described throughout this disclosure and specified by the instruction sequence of the program, and writes back the results to the RAM 3014. The CPU 3012 may also search for information in a file, database, etc. in the recording medium. For example, when a plurality of entries each having an attribute value of a first attribute associated with an attribute value of a second attribute are stored in the recording medium, the CPU 3012 may search for an entry whose attribute value of the first attribute matches a specified condition from among the plurality of entries, read the attribute value of the second attribute stored in the entry, and thereby obtain the attribute value of the second attribute associated with the first attribute that satisfies a predetermined condition.

[0272] The above-described programs or software modules may be stored in a computer-readable storage medium on the computer 3000 or in the vicinity of the computer 3000. In addition, a recording medium such as a hard disk or a RAM provided in a server system connected to a dedicated communication network or the Internet can be used as a computer-readable storage medium, thereby providing the above-described programs to the computer 3000 via the network.

[0273] (Experimental Examples and Comparative Experimental Examples) The present invention will be specifically described below using experimental examples and comparative experimental examples. Note that the present invention is not limited to the following experimental examples and comparative experimental examples. Figures 23, 24, 25, and 26 show various measurement results in experimental example 1. Figures 27, 28, 29, and 30 show various measurement results in comparative experimental example 1. Figures 31, 32, 33, and 34 show various measurement results in experimental example 2.

[0274] (Experimental Example 1) (Measurement using a polarization state measuring device) First, a fiber stretcher (OPTIPHASE, PZ1-SMF4-APC-E) was prepared in which a 12.3 m long optical fiber (Corning, SMF28e+ fiber) was wrapped four times around a piezoelectric element. One end of the optical fiber was connected to a laser oscillator (Pure Photonics, PPCL550). The other end of the optical fiber was connected to a polarization state measuring device (Novoptel, PM1000 Polarimeter).

[0275] A laser beam with a wavelength of 1550 nm was emitted from the laser oscillator, and a voltage was applied to the fiber stretcher, causing a lateral pressure fluctuation of 140 kHz to the optical fiber. The Stokes parameters of the output light from the fiber stretcher were measured using a polarization state measuring device. In addition, the movement angle of the trajectory on the Poincaré sphere was derived using the measurement results of the Stokes parameters.

[0276] The above experiment was carried out by changing the magnitude of the voltage applied to the fiber stretcher. The magnitude (peak-to-peak value) of the voltage applied to the fiber stretcher was three kinds: 500 mV, 1 V, and 2 V.

[0277] Figure 23 shows the measurement results of the Stokes parameters when the voltage applied to the fiber stretcher is 1 V. As shown in Figure 23, it was confirmed that minute polarization fluctuations occur at a frequency of 140 kHz. In addition, when the state of polarization fluctuations on the Poincaré sphere was confirmed using the measurement results of the Stokes parameters, minute polarization fluctuations were confirmed on the Poincaré sphere.

[0278] (Measurement using an optical delay interferometer) Next, the other end of the optical fiber was disconnected from the polarization state measuring instrument, and the other end of the optical fiber was connected to one end of an optical delay interferometer (Optiplex, DI-C1EFAM512). The other end of the optical delay interferometer was connected to a balanced optical receiver (Optiplex, BR-C0200B1DC). The balanced optical receiver was equipped with a low-pass filter, and the cutoff frequency of the balanced optical receiver was 150 MHz. The output of the balanced optical receiver was sampled using an AD converter (Tektronix, oscilloscope model MSO64).

[0279] A laser beam with a wavelength of 1550 nm was emitted from the laser oscillator, and a voltage was applied to the fiber stretcher to apply a lateral pressure fluctuation of 140 kHz to the optical fiber. Using the sampled measurement results of the output of the balanced optical receiver, (a) a histogram of the magnitude of the differential phase and (b) a graph showing the time fluctuation of the magnitude of the differential phase were created. The sampled measurement results of the output of the balanced optical receiver were subjected to a fast Fourier transform to derive (c) the frequency spectrum of the differential phase.

[0280] The above experiment was carried out by changing the magnitude of the voltage applied to the fiber stretcher. The magnitude (peak-to-peak value) of the voltage applied to the fiber stretcher was three kinds: 500 mV, 1 V, and 2 V.

[0281] Fig. 24 shows a histogram of the output of the balanced optical receiver when the voltage applied to the fiber stretcher is 1 V. Fig. 25 shows the time fluctuation of the output of the balanced optical receiver when the voltage applied to the fiber stretcher is 1 V. Fig. 26 shows the frequency spectrum of the output of the balanced optical receiver when the voltage applied to the fiber stretcher is 1 V.

[0282] As shown in Figure 24, the histogram is split into two, indicating that phase fluctuations are occurring. As shown in Figure 25, the fluctuations have steep rises and falls, indicating that an integral effect due to the low-pass filter of the balanced optical receiver is occurring. As mentioned above, when an integral effect is present, it is assumed that phase fluctuations are being measured directly. Although the cause of the steep fluctuations is unclear, it is assumed that mechanical vibrations are unable to follow the sinusoidal input voltage, resulting in localized steep fluctuations.

[0283] As described above, in FIG. 26, the magnitude of the fluctuation was derived by measuring the frequency component at 140 kHz. In addition, the peak-to-peak value of the frequency component at 140 kHz was measured to derive the amount of phase shift. As a result, the voltage applied to the fiber stretcher was roughly proportional to the measurement result of the amount of phase shift. As shown in Non-Patent Document 15, there is a proportional relationship between the voltage applied to the fiber stretcher and the values ​​of the lateral pressure and birefringence caused by the operation of the fiber stretcher, so the results of Experimental Example 1 show that the measurement principle described above is functioning.

[0284] (evaluation) The measurement results using a polarization state measuring instrument (sometimes called a polarimeter) were compared with those using an optical delay interferometer. As a result, the measurement results using the optical delay interferometer were in good agreement with those using the polarization state measuring instrument. For example, when the magnitude (peak-to-peak value) of the voltage applied to the fiber stretcher was 2V, the coordinates of both ends of the movement of the trajectory on the Poincaré sphere measured by the polarimeter were (0.31, 0.94, -0.15) and (0.17, 0.98, -0.06). In this case, the p-p value of the phase change was 0.17rad. On the other hand, according to the measurement results using the optical delay interferometer, the p-p value of the 140kHz component in the spectrum measurement results was 0.16rad.

[0285] This confirmed that it is possible to measure the approximate value of the movement angle of the trajectory on the Poincaré sphere using an optical delay interferometer, and also confirmed the validity of the detection principle of the movement fluctuation caused by the polarization fluctuation described above.

[0286] (Comparative Experimental Example 1) (Measurement using a polarization state measuring device) Except for setting the magnitude (peak-to-peak value) of the voltage applied to the fiber stretcher to 200 mV, the Stokes parameters of the output light from the fiber stretcher were measured using the same procedure as in Experimental Example 1. In addition, the movement angle of the trajectory on the Poincaré sphere was derived using the measurement results of the Stokes parameters.

[0287] Figure 27 shows the measurement results of the Stokes parameters when the voltage applied to the fiber stretcher is 200 mV. As shown in Figure 27, it was confirmed that minute polarization fluctuations occur at a frequency of 140 kHz. In addition, when the state of polarization fluctuations on the Poincaré sphere was confirmed using the measurement results of the Stokes parameters, minute polarization fluctuations were confirmed on the Poincaré sphere.

[0288] (Measurement using an optical delay interferometer) Except for setting the magnitude (peak-to-peak value) of the voltage applied to the fiber stretcher to 200 mV, (a) a histogram of the magnitude of the differential phase and (b) a graph showing the time variation of the magnitude of the differential phase were created in the same manner as in Experimental Example 1. In addition, (c) the frequency spectrum of the differential phase was derived.

[0289] Fig. 28 shows a histogram of the output of the balanced optical receiver when the voltage applied to the fiber stretcher is 200 mV. Fig. 29 shows the time fluctuation of the output of the balanced optical receiver when the voltage applied to the fiber stretcher is 200 mV. Fig. 30 shows the frequency spectrum of the output of the balanced optical receiver when the voltage applied to the fiber stretcher is 200 mV.

[0290] As shown in Fig. 28, only phase noise is observed in the histogram. On the other hand, Fig. 29 and Fig. 30 show that a minute phase fluctuation of 140 kHz occurs that cannot be read from Fig. 28. This confirms that the application of statistical processing makes it difficult to read the high-speed fluctuation that actually exists.

[0291] (Experimental Example 2) (Measurement using a polarization state measuring device) First, one end of the optical fiber was connected to a laser oscillator (Pure Photonics, model PPCL550). The other end of the optical fiber was connected to a polarization scrambler (Luna Innovations, NRT-2500). The output end of the polarization scrambler was connected to a polarization state measuring instrument (Novoptel, PM1000 Polarimeter).

[0292] A laser beam with a wavelength of 1550 nm was emitted from the laser oscillator, and high-speed polarization fluctuation was generated using the spinner mode of the polarization scrambler. The polarization fluctuation frequency of the polarization scrambler was set to 75 kHz. This corresponds to an angular velocity of movement of approximately 470 krad / s on the Poincaré sphere.

[0293] The Stokes parameters of the polarization-varying light output from the polarization scrambler were measured using a polarization state measurement device, and the movement angle of the trajectory on the Poincaré sphere was derived using the measurement results of the Stokes parameters.

[0294] Fig. 31 shows the measurement results of the Stokes parameters in Experimental Example 2. As shown in Fig. 31, it was confirmed that extremely large and high-speed polarization fluctuations occurred as specified by the polarization scrambler. In addition, when the state of the polarization fluctuations on the Poincaré sphere was confirmed using the measurement results of the Stokes parameters, it was confirmed that the orbit on the Poincaré sphere was close to the great circle with the largest radius.

[0295] (Measurement using an optical delay interferometer) Next, the output terminal of the polarization scrambler was disconnected from the polarization state measuring instrument, and the output terminal of the polarization scrambler was connected to one end of an optical delay interferometer (Optiplex, DI-C1EFAM512). The other end of the optical delay interferometer was connected to a balanced optical receiver equipped with a low-pass filter function (Optiplex, BR-C0200B1DC). The output of the balanced optical receiver was sampled using an AD converter (Tektronix, oscilloscope MSO64).

[0296] A laser beam with a wavelength of 1550 nm was emitted from the laser oscillator, and high-speed polarization fluctuation was generated using the spinner mode of the polarization scrambler. The polarization fluctuation frequency of the polarization scrambler was set to 75 kHz. Using the measurement results of the sampled output of the balanced optical receiver, (a) a histogram of the magnitude of the differential phase and (b) a graph showing the time fluctuation of the magnitude of the differential phase were created. The measurement results of the sampled output of the balanced optical receiver were subjected to a fast Fourier transform to derive (c) the frequency spectrum of the differential phase.

[0297] Fig. 32 shows a histogram of the output of the balanced optical receiver in experimental example 2. Fig. 33 shows the time fluctuation of the output of the balanced optical receiver in experimental example 2. Fig. 34 shows the frequency spectrum of the output of the balanced optical receiver in experimental example 2. The results in Figs. 32, 33 and 34 all show that large polarization fluctuations occurred.

[0298] As shown in Figure 33, the fluctuation has a steep rise and fall, which indicates the appearance of an integral effect due to the low-pass filter of the balanced optical receiver. As described above, when the integral effect appears, it is assumed that the phase fluctuation is measured directly. The polarization scrambler NRT-2500 generates polarization fluctuation by rotating the half-wave plate at high speed. It is assumed that the phase fluctuation occurs due to the half-wave plate at the moment when the eigenaxis of the half-wave plate crosses the eigenaxis of the orthogonal polarization mode, resulting in the steep fluctuation.

[0299] As shown in Figure 34, the 150 kHz component was measured as the main frequency component. In this regard, 75 kHz, which is the nominal value of the polarization scrambler NRT-2500, is the frequency of polarization rotation. The phase change associated with the rotation of the half-wave plate changes at twice the frequency of the polarization rotation. Therefore, it is presumed that the 75 kHz and 150 kHz frequency components were observed.

[0300] This confirmed that even when a large polarization fluctuation occurs, it is possible to measure the approximate value of the movement angle of the trajectory on the Poincaré sphere using an optical delay interferometer, and confirmed the effectiveness of the detection principle of the movement fluctuation caused by the polarization fluctuation described above.

[0301] (Application of evaluation information on polarization fluctuations to control of communication systems) In the embodiment described with reference to Fig. 16 to Fig. 21, the details of the communication system 1600 have been described by taking as an example a case where the status monitor 1680 outputs the evaluation information regarding the polarization fluctuation as an alarm or a flag. However, the manner in which the evaluation information regarding the polarization fluctuation is used is not limited to the above embodiment. In other embodiments, the evaluation information regarding the polarization fluctuation may be used for controlling the communication system. An example of an embodiment in which the evaluation information regarding the polarization fluctuation is used for controlling the communication system will be described with reference to Figs. 35, 36, 37, 38, 39, and 40.

[0302] The inventors of the present invention have noticed that the status monitor 1680 detects abrupt polarization fluctuations in the optical domain, and have come up with the idea of ​​using evaluation information on the polarization fluctuations to control signal processing in the electrical domain (sometimes referred to as the electrical signal domain). For example, an optical signal receiver for a digital coherent optical communication system uses a digital signal processor (sometimes referred to as a DSP) to perform various types of signal processing, such as (i) processing for equalizing chromatic dispersion, (ii) processing for compensating for polarization splitting and / or polarization mode dispersion, (iii) processing for estimating the carrier phase, and (iv) processing for decoding an information signal.

[0303] The characteristics of the optical transmission line 10 are determined by chromatic dispersion, birefringence, polarization mode dispersion, and the like in the optical transmission line 10. The characteristics of the optical transmission line 10 can also be described using a propagation matrix H. The optical signal receiving device of the digital coherent optical communication system can substantially completely extract information about the complex amplitude of the optical signal. Therefore, the optical signal receiving device of the digital coherent optical communication system can compensate for the group velocity dispersion of the optical transmission line. Specifically, in the above-mentioned (i) process for equalizing chromatic dispersion and (ii) process for compensating for polarization splitting and / or polarization mode dispersion, various effects occurring while the signal light is propagating through the optical transmission line 10 are expressed as an inverse matrix H of the propagation matrix H. -1 is compensated using

[0304] In one embodiment, the propagation matrix H is expressed as a product of a first matrix representing the effect of chromatic dispersion and a second matrix representing the effect of birefringence and / or polarization mode dispersion. In another embodiment, the propagation matrix H is expressed as a product of a first matrix representing the effect of chromatic dispersion, a second matrix representing the effect of birefringence, and a third matrix representing the effect of polarization mode dispersion. In yet another embodiment, the propagation matrix H is expressed as a single matrix for collectively expressing the effect of chromatic dispersion and the effect of birefringence and / or polarization mode dispersion.

[0305] inverse matrix H -1The compensation process using the above is realized in the electrical domain, for example, by using a finite impulse response filter (sometimes referred to as an FIR filter). Any known FIR filter may be adopted as the FIR filter. The FIR filter disclosed in Non-Patent Document 16 may be used as the FIR filter. In one embodiment, the FIR filter includes a first FIR filter corresponding to the above-described first matrix, and a second FIR filter corresponding to the above-described second matrix. In another embodiment, the FIR filter includes a first FIR filter corresponding to the above-described first matrix, a second FIR filter corresponding to the above-described second matrix, and a third FIR filter corresponding to the above-described third matrix. In another embodiment, the FIR filter includes a single FIR filter corresponding to a single matrix for collectively expressing the above-described effect due to chromatic dispersion and the effects of birefringence and polarization mode dispersion.

[0306] Since the polarization state of the optical transmission line 10 changes from moment to moment, in an optical signal receiving device for a digital coherent optical communication system, the tap coefficients of the FIR filter are updated at predetermined time intervals based on the oversampling ratio of the AD conversion. In many cases, the oversampling ratio is set to 2. This allows the tap coefficients to be updated twice as frequently as the symbol rate, so that data can be demodulated stably even if a sudden polarization fluctuation occurs.

[0307] Various algorithms have been proposed for updating the tap coefficients. An example of the algorithm is the constant-modulus algorithm (CMA). The various algorithms for updating the tap coefficients include a step of performing complex multiplication, and therefore require a large amount of power to update the tap coefficients.

[0308] Non-Patent Document 17 discloses downsampling and updating tap coefficients at the same frequency as the symbol rate in order to reduce the power consumption of a DSP. According to the technology disclosed in Non-Patent Document 17, the frequency of updating the tap coefficients is set to the same frequency as the symbol rate by utilizing the fact that the phase rotation occurring in one symbol time is extremely small.

[0309] In addition, in the existing FIR filter, once the update frequency of the tap coefficients is determined, the update frequency cannot be changed. Therefore, in the existing DSP, the tap coefficients are constantly updated at a high frequency so as to be able to respond to sudden polarization fluctuations. As described above, although the tap coefficient update process consumes a large amount of power, sudden polarization fluctuations often occur only a few times a day.

[0310] The inventors of the present invention have realized that a sudden polarization change can be detected in the optical domain before the sudden polarization change occurs in the electrical domain, and have come up with the idea of ​​reducing unnecessary power consumption in controlling an FIR filter. The above-mentioned control method for an FIR filter includes, for example, a detection signal receiving step of receiving a detection signal which is a signal indicating a detection result of a detection device which optically detects a polarization change in an optical transmission line, and a setting step of determining a setting related to an update frequency or update interval of the number of taps of the FIR filter, or an update frequency or update interval of the tap coefficients of the FIR filter, based on the detection result of the detection device.

[0311] More specifically, the present inventor has conceived of setting the update frequency of the tap coefficients of the FIR filter to a relatively small value when no sudden polarization fluctuation is detected in the optical domain, and increasing the update frequency of the tap coefficients of the FIR filter before a sudden polarization fluctuation occurs in the electrical domain when a sudden polarization fluctuation is detected in the optical domain. As a result, when no sudden polarization fluctuation is detected in the optical domain, the update frequency of the tap coefficients of the FIR filter can be set to a value smaller than the symbol rate. The update frequency may be 1 / 2 or less of the symbol rate, 1 / 5 or less of the symbol rate, 1 / 10 or less of the symbol rate, 1 / 20 or less of the symbol rate, 1 / 50 or less of the symbol rate, or 1 / 100 or less of the symbol rate.

[0312] As described above, since sudden polarization fluctuations occur only a few times a day, the above processing significantly reduces the power consumption of the DSP. In addition, during the period when sudden polarization fluctuations occur in the electrical domain, the number of taps or tap coefficients of the FIR filter are updated frequently. This allows stable data demodulation.

[0313] Similarly, the present inventor has conceived of setting the update frequency of the tap number of the FIR filter to a relatively small value when no sudden polarization fluctuation is detected in the optical domain, and increasing the update frequency of the tap number of the FIR filter before a sudden polarization fluctuation occurs in the electrical domain when a sudden polarization fluctuation is detected in the optical domain. As a result, for example, when no sudden polarization fluctuation is detected in the optical domain, the update frequency of the tap number of the FIR filter can be set to a value smaller than the symbol rate. The update frequency may be 1 / 2 or less of the symbol rate, 1 / 5 or less of the symbol rate, 1 / 10 or less of the symbol rate, 1 / 20 or less of the symbol rate, 1 / 50 or less of the symbol rate, or 1 / 100 or less of the symbol rate.

[0314] According to one embodiment, the process of updating the number of taps includes a procedure of increasing or decreasing the number of taps itself. According to another embodiment, the process of updating the number of taps includes a procedure of setting some of the tap coefficients to 0, thereby effectively decreasing the number of taps. The process of updating the number of taps may also include a procedure of changing some of the tap coefficients from 0 to a non-zero positive number, thereby effectively increasing the number of taps.

[0315] In the control of the existing FIR filter, the number of taps is fixed. However, according to the above process, for example, when no sudden polarization fluctuation is detected in the optical domain, the number of taps of the FIR filter is set to a relatively small value. Also, the number of taps is updated at a relatively low update frequency. On the other hand, when a sudden polarization fluctuation is detected in the optical domain, the number of taps of the FIR filter is set to a relatively large value before the sudden polarization fluctuation occurs in the electrical domain. Also, the number of taps is updated at a relatively high update frequency. This significantly reduces the power consumption in the DSP. Also, data can be demodulated stably.

[0316] (Overview of communication system 3500) 35 illustrates an example of a system configuration of a communication system 3500. To the extent that there is no technical contradiction, the communication system 3500 may have a configuration similar to that of the communication system 100 and / or the communication system 1600. Also, a description of the configuration similar to that of the communication system 100 and / or the communication system 1600 may be omitted.

[0317] In this embodiment, the communication system 3500 includes, for example, an optical signal transmitting device 110 and an optical signal receiving device 3520. In this embodiment, the details of the communication system 3500 will be described taking as an example a case in which the signal light output from the optical signal transmitting device 110 propagates through the optical transmission line 10 and reaches the optical signal receiving device 3520 to transmit an information signal.

[0318] In this embodiment, the optical signal receiving device 3520 includes a demultiplexer 1640, an optical receiving unit 3550, a local oscillator 3552, a digital signal processor 3560, and a status monitoring device 1680. In this embodiment, the digital signal processor 3560 has a signal input terminal 3562, a signal output terminal 3564, and a control input terminal 3566.

[0319] In this embodiment, when the signal light includes multiple optical signals with different wavelengths, the demultiplexer 1640 demultiplexes the multiple optical signals by wavelength. The optical signal (sometimes referred to as a received signal) received by the optical signal receiving device 1620 includes, for example, light of a first wavelength (sometimes referred to as a communication optical signal) used for transmitting an information signal and light of a second wavelength (sometimes referred to as a supervisory optical signal) used for detecting polarization fluctuation. The value of the first wavelength is different from the value of the second wavelength. The supervisory optical signal may be unmodulated. In this embodiment, the demultiplexer 1640 outputs the communication optical signal to the optical receiving unit 3550. The demultiplexer 1640 outputs the supervisory optical signal to the status monitoring device 1680.

[0320] In this embodiment, the state monitoring device 1680 analyzes light input to the state monitoring device 1680 (sometimes referred to as input light) to monitor the state of the optical transmission line 10 and / or the state of the signal light propagated through the optical transmission line 10. The state monitoring device 1680, for example, analyzes the phase fluctuation of the input light to evaluate at least one of (i) the presence and / or the degree of phase noise, and (ii) the presence and / or the degree of polarization fluctuation. In this way, the state monitoring device 1680 can detect, for example, polarization fluctuation of the signal light propagated through the optical transmission line 10.

[0321] In this embodiment, the status monitor 1680 generates a signal (sometimes referred to as a control signal) for controlling the operation of the digital signal processor 3560 based on the evaluation result or detection result regarding the polarization fluctuation. The control signal includes, for example, information indicating the presence or absence and / or the degree of the polarization fluctuation. The degree of the polarization fluctuation may be referred to as the fluctuation amount of the polarization fluctuation.

[0322] As described above, the state monitoring device 1680 outputs evaluation information related to the polarization fluctuation. The evaluation information indicates, for example, the detection result of the state monitoring device 1680. Examples of the evaluation information related to the polarization fluctuation include information indicating that the polarization fluctuation has been detected, information indicating that the polarization fluctuation has occurred, information indicating that the moving angular velocity has exceeded a specified angular velocity, information indicating that the moving angle has exceeded a specified angle, information indicating that the fluctuation frequency has exceeded a specified frequency, information indicating the fluctuation amount of the polarization fluctuation, and information indicating the absolute value of the fluctuation amount of the polarization fluctuation.

[0323] The information indicating that a polarization fluctuation has been detected may be information indicating that a polarization fluctuation exceeding a predetermined degree has been detected. The information indicating that a polarization fluctuation is occurring may be information indicating that a polarization fluctuation exceeding a predetermined degree is occurring. As described above, the amount of fluctuation in the movement angle of the locus on the Poincaré sphere may be used as the amount of fluctuation in the polarization fluctuation.

[0324] In this embodiment, the optical receiving unit 3550 converts an optical signal into an electrical signal. In this embodiment, the optical receiving unit 3550 includes, for example, an optical 90-degree hybrid and an optical receiver. The details of the optical receiving unit 3550 will be described later.

[0325] In this embodiment, the local oscillator 3552 outputs a local light. The local light output from the local oscillator 3552 is input to an optical 90-degree hybrid of the optical receiving unit 3550. The local oscillator 3552 may have a similar configuration to the local oscillator 130.

[0326] In this embodiment, the digital signal processor 3560 performs various signal processing in the electrical domain and demodulates the received signal transmitted by the signal light, thereby generating an information signal.

[0327] For example, the digital signal processor 3560 compensates for the polarization mode dispersion of the signal light propagated through the optical transmission line 10. For example, the digital signal processor 3560 compensates for the polarization mode dispersion by digital signal processing using a finite impulse response filter. The digital signal processor 3560 may control the operation of the finite impulse response filter. The digital signal processor 3560 will be described in detail later.

[0328] In this embodiment, a signal to be subjected to signal processing in the digital signal processor 3560 is input to the signal input terminal 3562. Specifically, an electrical signal output by the optical receiver 3550 is input to the signal input terminal 3562. In this embodiment, the signal output terminal 3564 outputs an information signal generated by the digital signal processor 3560. In this embodiment, evaluation information output by the state monitor 1680 is input to the control input terminal 3566. The evaluation information functions as a control signal for controlling, for example, the update frequency or update interval of the number of taps of the above-mentioned finite impulse response filter, or the update frequency or update interval of the tap coefficients of the finite impulse response filter.

[0329] The optical signal transmitting device 110 may be an example of an optical transmitting device. The status monitoring device 1680 may be an example of a detection device. The evaluation information of the status monitoring device 1680 may be an example of a detection signal. The communication system 3500 may be an example of an optical communication system. The optical signal receiving device 3520 may be an example of an optical receiving device, a compensation device, or a control device. The digital signal processor 3560 may be an example of a compensation device or a control device. The control input terminal 3566 may be an example of a control signal input terminal.

[0330] (An example of another embodiment) In this embodiment, in order to facilitate understanding of the communication system 3500, the details of the communication system 3500 have been described by taking as an example a case in which a received signal includes a single communication optical signal and a single supervisory optical signal. However, the communication system 3500 is not limited to this embodiment. For example, various multiplexing techniques are known in the field of optical communication. Therefore, according to another embodiment, various multiplexing techniques may be applied to the above-described communication system 3500.

[0331] For example, when optical wavelength multiplexing technology is applied to communication system 3500, the received signal includes one or more (sometimes referred to as one or more) communication optical signals. Each of the multiple communication optical signals is propagated by a signal light having a different wavelength. Similarly, the received signal may include one or more supervisory optical signals. Each of the multiple supervisory optical signals is propagated by a signal light having a different wavelength.

[0332] When the received signal includes multiple communication optical signals, the communication system 3500 may include the same number of optical receivers 3550 and digital signal processors 3560 as the number of communication optical signals. When the received signal includes multiple monitoring optical signals, the communication system 3500 may include the same number of status monitors 1680 as the number of monitoring optical signals.

[0333] For example, when the received signal includes multiple communication optical signals and a single monitoring optical signal, the evaluation information output by the single status monitor 1680 is used as a control signal for controlling the operations of the multiple digital signal processors 3560. This allows the operations of the multiple digital signal processors 3560 to be controlled by a single control signal.

[0334] 36 shows an example of the internal configuration of the optical receiving unit 3550 and the digital signal processor 3560. In this embodiment, the optical receiving unit 3550 includes an optical 90-degree hybrid 3654 and an optical receiver 3656. The optical receiver 3656 may include a plurality of optical receivers (e.g., four optical receiving elements). In this embodiment, the digital signal processor 3560 includes an AD converter 3662, a compensation unit 3664, a carrier phase estimation unit 3666, and a decoding unit 3668. The AD converter 3662 may include a plurality of AD converters (e.g., four AD conversion elements).

[0335] The optical 90-degree hybrid 3654 may have a similar configuration to the optical 90-degree hybrid 140. The optical receiver 3656 may have a similar configuration to the optical receiver 152 or the optical receiver 154. The AD converter 3662 may have a similar configuration to the AD converter 162 or the AD converter 164. The compensation unit 3664, the carrier phase estimation unit 3666, and the decoding unit 3668 may have a similar configuration to the signal processing unit 170 or the signal processing unit 1670. The compensation unit 3664 and the carrier phase estimation unit 3666 may have a similar configuration to the digital signal processing circuit 210. The decoding unit 3668 may have a similar configuration to the decoding circuit 220.

[0336] In this embodiment, the optical 90-degree hybrid 3654 causes the signal light propagated through the optical transmission line 10 to interfere with the local light from the local oscillator 130, and outputs a plurality of optical signals in which the received signal transmitted by the signal light is separated into a plurality of signal components. In this embodiment, the optical receiver 3656 converts each of the plurality of optical signals output by the optical 90-degree hybrid 3654 into an electrical signal. The optical receiver 3656 outputs an electrical signal corresponding to each of the plurality of optical signals output by the optical 90-degree hybrid 3654.

[0337] As a result, an electrical signal E corresponding to the in-phase component (sometimes called the I component) of the x-polarized component of the communication optical signal is generated. xI (t) and an electrical signal E corresponding to the orthogonal component (sometimes called a 90-degree phase component, a Q component, etc.) of the x-polarized component of the optical communication signal. xQ(t) and an electrical signal E corresponding to the in-phase component of the y-polarized component (sometimes referred to as the I component). yI (t) and an electrical signal E corresponding to the orthogonal component of the y-polarized component (sometimes called the 90-degree phase component, Q component). yQ Each electrical signal is input to an AD converter 3662 via a signal input terminal 3562 of a digital signal processor 3560.

[0338] In this embodiment, the AD converter 3662 converts the electrical signal from an analog signal to a digital signal. The AD converter 3662 samples the analog signal corresponding to each of the above components at a predetermined sampling frequency. This converts the analog signal corresponding to each of the above components into a complex digital signal. In FIG. 36, the x component and the y component of the n-th signal converted into a digital signal are each represented by E x (n) and E y It is expressed as (n).

[0339] In this embodiment, the compensator 3664 compensates for birefringence and / or polarization mode dispersion (sometimes referred to as birefringence and / or polarization mode dispersion of signal light) suffered by the signal light propagated through the optical transmission line 10. The compensator 3664 performs polarization separation by compensating for the birefringence and / or polarization mode dispersion of the signal light. The compensator 3664 performs polarization separation by compensating for the birefringence and / or polarization mode dispersion of the signal light by digital signal processing using, for example, a finite impulse response filter. This allows the orthogonal polarization to be restored.

[0340] In this embodiment, the compensation unit 3664 controls the operation of the finite impulse response filter based on the evaluation information input to the control input terminal 3566. This can significantly reduce the power consumption of the compensation unit 3664. In this embodiment, the compensation unit 3664 receives the complex digital signal E x (n) and E y (n) is input, and the compensator 3664 outputs a restored signal E X (n) and E YThe details of the compensation unit 3664 will be illustrated by taking the case where the compensation unit 3664 outputs E(n) as an example. X (n) is the x component of the nth restored signal obtained by polarization splitting, and E Y (n) is the y component of the n-th restored signal obtained by polarization splitting. The compensation unit 3664 will be described in detail later.

[0341] In this embodiment, the carrier phase estimator 3666 has a function of estimating the phase of the optical carrier, thereby restoring the phase of the optical carrier required by the decoder 3668.

[0342] In this embodiment, the decoder 3668 executes error correction processing, decoding processing, etc. As a result, an information signal is extracted from the received signal. The decoder 3668 outputs the decoded information signal to the signal output terminal 3564.

[0343] (An example of another embodiment) In this embodiment, the details of the digital signal processor 3560 have been described by taking as an example a case in which the digital signal processor 3560 includes the AD converter 3662. However, the digital signal processor 3560 is not limited to this embodiment. In other embodiments, the AD converter 3662 may be disposed outside the digital signal processor 3560.

[0344] 37 illustrates an example of an internal configuration of the compensation unit 3664. In this embodiment, the compensation unit 3664 includes a chromatic dispersion equalization unit 3720 and a polarization separation / polarization mode dispersion compensation unit 3740. In this embodiment, the polarization separation / polarization mode dispersion compensation unit 3740 includes a control signal receiving unit 3750, an FIR filter 3760, and a filter control unit 3770. In this embodiment, the filter control unit 3770 includes a setting unit 3772 and an updating unit 3774.

[0345] In this embodiment, the chromatic dispersion equalizer 3720 converts the complex digital signal E x (n) and E y(n) is compensated for the group delay characteristic. This results in a complex digital signal E xc (n) and E yc (n) is obtained.

[0346] In this embodiment, the polarization separation / polarization mode dispersion compensator 3740 compensates for the effects of birefringence and / or polarization mode dispersion on the signal light, and converts the signal light into the original orthogonally polarized signal E X (n) and E Y Specifically, the polarization separation / polarization mode dispersion compensation unit 3740 restores the inverse matrix H -1 For example, the polarization separation / polarization mode dispersion compensator 3740 performs compensation processing using the inverse matrix H -1 The complex digital signal E x (n) and E y (n) is input. This produces the above-mentioned restored signal E X (n) and E Y (n) is obtained.

[0347] The inverse matrix H -1 E x E in (n) X (n) Coefficient h representing the component xx (ω), E y E in (n) X (n) Coefficient h representing the component xy (ω), E x E in (n) Y (n) Coefficient h representing the component yx (ω), E y E in (n) Y (n) Coefficient h representing the component yy Using (ω), it is expressed by the following formula C-1: In formula C-1, ω represents the angular frequency of the optical signal.

[0348] (Formula C-1)

number

[0349] h in formula C-1 xx (ω), h xy (ω), h yx (ω) and h yy Express (ω) as hp (p is xx, xy, yx, or yy), and define the inverse matrix H -1 If the number of taps of the FIR filter corresponding to is k, the x-component of the input vector of the FIR filter is expressed by the following formula C-2. Similarly, the y-component of the input vector of the above FIR filter is expressed by the following formula C-3. Also, the tap coefficient vector of the FIR filter is expressed by the following formula C-4. In formulas C-2, C-3, and C-4, the subscript T represents transposition.

[0350] In this case, the x-component E of the reconstructed signal described above X (n) is derived based on the following equation C-5. Similarly, the y component E of the restored signal described above Y (n) is derived based on the following formula C-6.

[0351] In addition, when the symbol interval is Ts and the oversampling ratio of the AD converter 3662 is m, the delay time interval of the above FIR filter is Ts / m. X The square of the absolute value of (n) and E Y The tap coefficients are controlled so that the square of the absolute value of (n) approaches one.

[0352] (Formula C-2)

number

[0353] (Formula C-3)

number

[0354] (Formula C-4)

number

[0355] (Formula C-5)

number

[0356] (Formula C-6)

number

[0357] In this embodiment, the control signal receiving unit 3750 receives the evaluation information output by the status monitoring device 1680. As described above, the status monitoring device 1680 optically detects the polarization fluctuation of the monitoring optical signal propagated through the optical transmission line 10. In addition, the status monitoring device 1680 outputs evaluation information (sometimes referred to as evaluation information related to polarization fluctuation) indicating the evaluation result or detection result related to the polarization fluctuation. The control signal receiving unit 3750 may output the evaluation information to the setting unit 3772.

[0358] In this embodiment, the FIR filter 3760 compensates for the effects of birefringence and / or polarization mode dispersion on the signal light to convert it into the original orthogonally polarized signal E X (n) and E Y Specifically, the FIR filter 3760 recovers the complex digital signal E(n) described above. x (n) and E y (n) is input, and the above-mentioned restored signal E X (n) and E Y Output (n).

[0359] According to this embodiment, the number of taps or the tap coefficients of the FIR filter 3760 are dynamically changed (the above change may be referred to as an update). For example, the number of taps or the tap coefficients of the FIR filter 3760 are changed during operation of the polarization separation / polarization mode dispersion compensation unit 3740. According to this embodiment, the update frequency or update interval of the number of taps or the tap coefficients of the FIR filter 3760 is dynamically changed. For example, the update frequency or update interval of the number of taps or the tap coefficients of the FIR filter 3760 is changed during operation of the polarization separation / polarization mode dispersion compensation unit 3740.

[0360] In this embodiment, the filter control unit 3770 controls the operation of the polarization separation / polarization mode dispersion compensation unit 3740. Specifically, the filter control unit 3770 controls the operation of the FIR filter 3760. More specifically, the filter control unit 3770 changes, for example, the number of taps of the FIR filter 3760. The filter control unit 3770 changes, for example, the tap coefficients of the FIR filter 3760. The filter control unit 3770 changes, for example, the update frequency or update interval of the number of taps of the FIR filter 3760. The filter control unit 3770 changes, for example, the update frequency or update interval of the tap coefficients of the FIR filter 3760. The filter control unit 3770 may substantially increase or decrease the number of taps of the FIR filter 3760 by adjusting the tap coefficients of the FIR filter 3760.

[0361] In this embodiment, based on evaluation information related to polarization fluctuation, the setting unit 3772 determines settings related to the update frequency or update interval of the number of taps of the FIR filter 3760 and / or the update frequency or update interval of the tap coefficients of the FIR filter 3760. The setting unit 3772 may determine the above settings while the polarization separation / polarization mode dispersion compensating unit 3740 is operating, based on evaluation information acquired while the polarization separation / polarization mode dispersion compensating unit 3740 is operating.

[0362] As described above, the evaluation information on the polarization fluctuation includes information indicating that a polarization fluctuation exceeding a predetermined degree has been detected, information indicating that a polarization fluctuation exceeding a predetermined degree has occurred, information indicating the amount of fluctuation of the polarization fluctuation, information indicating the absolute value of the amount of fluctuation of the polarization fluctuation, etc. In this way, the setting unit 3772 can determine whether or not the absolute value of the amount of fluctuation of the polarization fluctuation is greater than a predetermined threshold value based on the evaluation information on the polarization fluctuation. The setting unit 3772 determines the above setting based on, for example, the above determination result.

[0363] In one embodiment, when it is determined that the absolute value of the fluctuation amount of the polarization fluctuation is greater than the threshold, the setting unit 3772 determines (i) to increase the set value of the update frequency of the number of taps and / or the tap coefficients from the current set value, (ii) to set the set value of the update frequency of the number of taps and / or the tap coefficients to a predetermined first value, (iii) to decrease the set value of the update interval of the number of taps and / or the tap coefficients from the current set value, or (iv) to set the set value of the update interval of the number of taps and / or the tap coefficients to a predetermined second value. The first value and the second value may be the same or different.

[0364] In another embodiment, when it is not determined that the absolute value of the fluctuation amount of the polarization fluctuation is larger than the threshold value, the setting unit 3772 determines (i) to make the set value of the update frequency of the number of taps and / or the tap coefficient smaller than the current set value, (ii) to set the set value of the update frequency of the number of taps and / or the tap coefficient to a predetermined third value, (iii) to make the set value of the update interval of the number of taps and / or the tap coefficient larger than the current set value, or (iv) to set the set value of the update interval of the number of taps and / or the tap coefficient to a predetermined fourth value. The third value and the fourth value may be the same or different. The third value may be a value different from the first value, and the fourth value may be a value different from the second value.

[0365] According to these embodiments, for example, when no sudden polarization fluctuation is detected in the optical domain, the number of taps and / or the update frequency of the tap coefficients of the FIR filter can be set to a relatively small value, and when a sudden polarization fluctuation is detected in the optical domain, the number of taps and / or the update frequency of the tap coefficients of the FIR filter can be increased before a sudden polarization fluctuation occurs in the electrical domain. This significantly reduces the power consumption in the digital signal processor 3560. Also, data can be demodulated stably.

[0366] In this embodiment, the update unit 3774 updates the number of taps and / or the tap coefficients of the FIR filter 3760. The update unit 3774 may update the number of taps and / or the tap coefficients at an update frequency or update interval determined by the setting determined by the setting unit 3772. The update unit 3774 may update the number of taps and / or the tap coefficients during operation of the polarization separation / polarization mode dispersion compensation unit 3740.

[0367] (Time lag between detecting polarization fluctuations in the optical domain and in the electrical domain) Since a huge amount of calculation processing is executed in the DSP, a relatively large latency occurs. For example, Non-Patent Documents 20 and 21 disclose that a delay of about 1 μs occurs in a digital coherent optical communication system. Although the delay in each of the chromatic dispersion equalizer 3720 and the polarization splitting / polarization mode dispersion compensator 3740 is unknown, considering that an FIR filter having a relatively large number of taps is also used in the chromatic dispersion equalizer 3720, it is estimated that a delay of several hundred ns occurs in the chromatic dispersion equalizer 3720.

[0368] On the other hand, as described above, the delay time in the optical delay interferometer 340 of the status monitoring device 1680 is 35.7 ps when the symbol rate is 28 GSymbol / s. In addition, Non-Patent Documents 20 and 21 disclose that the delay time of a transponder that performs optical reception, identification and regeneration, and optical transmission is 4 to 30 ns. Assuming that the delay time of the electronic circuit arranged in the status monitoring device 1680 is approximately the same as the delay time of the transponder disclosed in Non-Patent Documents 20 and 21, the delay time of the entire status monitoring device 1680 is estimated to be several tens of ns.

[0369] Considering the above estimation and the structure of the DSP, it is estimated that the length of the period from when a polarization fluctuation is detected in the optical domain to when a polarization fluctuation is detected in the electrical domain is about several hundreds of ns. As a result, according to this embodiment, after the state monitor 1680 detects an abrupt polarization fluctuation in the optical domain, the filter control unit 3770 can change the setting of the FIR filter 3760 before the abrupt polarization fluctuation occurs in the electrical signal input to the FIR filter 3760.

[0370] The polarization separation / polarization mode dispersion compensator 3740 may be an example of a compensation device or a control device. The control signal receiver 3750 may be an example of a detection signal receiver. The FIR filter 3760 may be an example of a compensation device or a finite impulse response filter. The filter controller 3770 may be an example of a control device.

[0371] (An example of another embodiment) In the present embodiment, the details of the polarization separation / polarization mode dispersion compensator 3740 have been described taking as an example a case in which the polarization separation / polarization mode dispersion compensator 3740 includes the control signal receiver 3750 and the filter controller 3770. However, the polarization separation / polarization mode dispersion compensator 3740 is not limited to this embodiment.

[0372] In another embodiment, the control signal receiving unit 3750 and the filter control unit 3770 may be disposed outside the polarization separation / polarization mode dispersion compensating unit 3740. As a result, for example, when the optical signal receiving device 3520 includes a plurality of digital signal processors 3560, the single filter control unit 3770 can control the FIR filters 3760 of the plurality of digital signal processors 3560.

[0373] In still another embodiment, when the optical signal receiving device 3520 includes a plurality of digital signal processors 3560, some of the digital signal processors 3560 may include the control signal receiving unit 3750 and the filter control unit 3770, and the remaining digital signal processors 3560 may not include the control signal receiving unit 3750 and the filter control unit 3770. In this case, the filter control unit 3770 arranged in some of the digital signal processors 3560 may control the FIR filters 3760 of the other digital signal processors 3560.

[0374] Fig. 38 illustrates an example of information processing in the compensation section 3664. Fig. 38 illustrates an example of information processing for the filter control section 3770 to control the operation of the compensation section 3664, for example.

[0375] According to this embodiment, first, in step 3820 (step may be abbreviated as S), the control signal receiver 3750 receives the evaluation information on the polarization fluctuation output by the state monitor 1680. Next, the setting unit 3772 analyzes the evaluation information on the polarization fluctuation and determines whether or not the absolute value of the amount of fluctuation in the polarization state is greater than a predetermined threshold value.

[0376] The amount of change in the polarization state is expressed, for example, by an approximate amount of change in the movement angle of the locus on the Poincaré sphere that represents the change in the polarization state. The setting unit 3772 performs the above-mentioned determination process by, for example, comparing the approximate amount of change in the movement angle of the locus on the Poincaré sphere with a preset reference value related to the amount of change.

[0377] If it is determined in S3820 that the absolute value of the amount of variation in the state of polarization is greater than a predetermined threshold value (Yes in S3820), then in S3842 the setting unit 3772 determines, for example, to change the setting value of the update frequency of the tap coefficient to a value greater than the current value or to a predetermined first setting value. Note that the setting unit 3772 may execute various processes described in relation to Fig. 37 to determine the setting related to the number of taps and / or the update frequency or update interval of the tap coefficient.

[0378] On the other hand, if it is not determined in S3820 that the absolute value of the fluctuation amount of the polarization state is greater than the predetermined threshold value (No in S3820), the setting unit 3772 determines in S3844, for example, to change the setting value of the update frequency of the tap coefficient to a value smaller than the current value or to a second setting value that is predetermined. The second setting value may be smaller than the first setting value. Note that the setting unit 3772 may execute various processes described in relation to FIG. 37 to determine the setting regarding the number of taps and / or the update frequency or update interval of the tap coefficient.

[0379] Thereafter, in S3860, the update unit 3774 updates the tap coefficients of the FIR filter 3760. Specifically, the update unit 3774 updates the tap coefficients of the FIR filter 3760 at an update frequency indicated by the setting value determined in S3842 or S3844. Note that, as described in relation to FIG. 37, the update unit 3774 may update the number of taps of the FIR filter 3760.

[0380] Fig. 39 illustrates another example of the internal configuration of the compensation unit 3664. The compensation unit 3664 according to this embodiment has a similar configuration to the compensation unit 3664 described in relation to Fig. 37, except that a delay unit 3810 is provided in front of the chromatic dispersion equalization unit 3720.

[0381] In this embodiment, the delay unit 3810 receives the output of the AD converter 3662, and after a predetermined time has elapsed, outputs the output of the AD converter 3662 to the chromatic dispersion equalization unit 3720. This allows the filter control unit 3770 to reliably change the setting of the FIR filter 3760 after the state monitoring device 1680 detects a sudden polarization fluctuation in the optical domain and before the sudden polarization fluctuation occurs in the electrical signal input to the FIR filter 3760.

[0382] 40 illustrates an example of an internal configuration of a state monitoring device 4080. The state monitoring device 4080 may be another example of the state monitoring device 1680. In this embodiment, the state monitoring device 4080 includes a polarimeter 4082 and a signal processing unit 4084. The state monitoring device 4080 may have a similar configuration to the state monitoring device 1680, except that the state monitoring device 4080 uses the polarimeter 4082 instead of the optical delay interferometer 340 to obtain information indicating the time derivative of the phase difference.

[0383] When the degree of change in the phase difference between the x-polarized component of the electric field of the monitoring optical signal and the y-polarized component of the electric field of the monitoring optical signal is greater than a predetermined degree, it may be determined that polarization fluctuation is occurring. Therefore, if the amount of change in the phase difference between the x-polarized component of the electric field of the monitoring optical signal and the y-polarized component of the electric field of the monitoring optical signal can be measured, the setting unit 3772 may adjust the setting related to the update frequency or update interval of the number of taps and / or the tap coefficients of the FIR filter using information indicating the amount of change instead of the evaluation information related to the polarization fluctuation described above.

[0384] In this embodiment, the polarimeter 4082 measures the state of polarization (SOP) and / or degree of polarization (DOP) of light (e.g., the above-mentioned monitoring optical signal) input to the polarimeter 4082. The polarimeter 4082 outputs sampled Stokes parameters. The Stokes parameters are expressed by the above-mentioned equations B-13, B-14, B-15, and B-16.

[0385] There are no particular limitations on the measurement principle and structure of the polarimeter 4082. Any known polarimeter can be used as the polarimeter 4082. The polarimeter 4082 includes, for example, four photodetectors, three polarizers, one quarter-wave plate, and a data processing device.

[0386] In this embodiment, the signal processor 4084 first acquires sampled Stokes parameters. The signal processor 4084 derives a phase difference δ(t) between the x-polarized component of the electric field of the monitoring optical signal and the y-polarized component of the electric field of the monitoring optical signal based on the sampled Stokes parameters. The phase difference δ(t) is calculated by the following formula C-7 using the Stokes parameters S2 and S3.

[0387] (Formula C-7) δ(t)=tan -1 (S3 / S2)

[0388] When the i-th sampled δ(t) is expressed as δ(i) (i is an integer equal to or greater than 1), the signal processing unit 4084 can derive δ(i) based on the sampled Stokes parameters and equation C-7. The signal processing unit 4084 calculates an amount equivalent to the time differential of the phase difference δ(t) by, for example, calculating δ(i+1)-δ(i). The amount equivalent to the time differential of the phase difference δ(t) indicates the amount of change in the phase difference. The signal processing unit 4084 generates information indicating the amount of change in the phase difference. The signal processing unit 4084 outputs the information indicating the amount of change in the phase difference to the control input terminal 3566 of the digital signal processor 3560 as the above-mentioned control signal.

[0389] The polarimeter 4082 may be an example of a polarimeter, a polarization state measurement device, or a Stokes parameter measurement device. The information indicating the amount of change in phase difference may be an example of a detection signal.

[0390] Although the present invention has been described above using the embodiments, the technical scope of the present invention is not limited to the scope described in the above embodiments. It is clear to those skilled in the art that various modifications or improvements can be made to the above embodiments. Furthermore, the matters described for a specific embodiment can be applied to other embodiments to the extent that they are not technically inconsistent. It is clear from the claims that such modifications or improvements can also be included in the technical scope of the present invention.

[0391] It should be noted that the order of execution of each process, such as operations, procedures, steps, and stages, in the devices, systems, programs, and methods shown in the claims, specifications, and drawings is not specifically indicated as "before," "prior to," etc., and may be realized in any order unless the output of a previous process is used in a later process. Even if the operational flow in the claims, specifications, and drawings is explained using "first," "next," etc. for convenience, it does not mean that it is essential to perform the process in this order.

[0392] For example, the present specification discloses the following: (Item A-1) An evaluation device for evaluating phase noise of signal light propagated through an optical transmission line, comprising: a differential phase information acquisition unit that acquires information indicating a differential phase of input light at each of a plurality of time points included in an evaluation period; an index derivation unit that derives a degree of variation in the differential phase at each of the plurality of time points as an index for evaluating the phase noise; Equipped with the differential phase represents a difference between the phases of the input light at two time points that are adjacent in time among the plurality of time points; A time interval between the multiple time points is substantially constant and is equal to or less than a symbol time of the signal transmitted by the input light. Evaluation equipment. (Item A-2) The evaluation device according to item A-1, a demodulation unit that demodulates a received signal transmitted by the signal light to generate an information signal; An optical receiver comprising: (Item A-3) an optical transmitter for transmitting the signal light; An optical receiver according to item A-2; An optical communication system comprising: (Item A-4) A program for causing a computer to function as the evaluation device described in item A-1. (Item A-5) A method for evaluating phase noise of signal light propagated through an optical transmission line, comprising the steps of: a differential phase information acquisition step of acquiring information indicating a differential phase of input light at each of a plurality of time points included in an evaluation period; an index derivation step of deriving a degree of variation in the differential phase at each of the plurality of time points as an index for evaluating the phase noise; having the differential phase represents a difference between the phases of the input light at two time points that are adjacent in time among the plurality of time points; A time interval between the multiple time points is substantially constant and is equal to or less than a symbol time of the signal transmitted by the input light. Evaluation method.

[0393] For example, the present specification discloses the following: (Item B-1) A detection device for detecting polarization fluctuation of signal light propagated through an optical transmission line, comprising: a differential phase information acquisition unit that acquires information indicating a differential phase of an input light to be evaluated at each of one or more points in time; a determination unit that determines whether or not the differential phase at at least a portion of the one or more points in time satisfies a predetermined condition; Equipped with The predetermined conditions are: a first condition that the magnitude of the differential phase at at least one of the one or more time points is equal to or greater than a predetermined first threshold; a second condition that the number of time points at which the magnitude of the differential phase at a time point is equal to or greater than the first threshold value is equal to or greater than a predetermined second threshold value, among a plurality of time points that are included in an evaluation period that is a period having a predetermined length, the at least a portion of the one or more time points being equal to or greater than a predetermined second threshold value; a third condition that a ratio of a number of time points at which the magnitude of the differential phase at the time points is equal to the first threshold value or is greater than the first threshold value to a number of the time points included in the evaluation period is equal to a predetermined third threshold value or is greater than the third threshold value; A fourth condition that a movement angle at a fluctuation frequency of the trajectory on the Poincaré sphere, which is derived from the magnitude of the differential phase at each of the one or more time points, is equal to a predetermined fourth threshold value or is greater than the fourth threshold value; and a fifth condition that a moving angular velocity of the trajectory on the Poincaré sphere at the fluctuation frequency is equal to or greater than a predetermined fifth threshold value; At least one of Detection device. (Item B-2) A detection device according to item B-1; a demodulation unit that demodulates a received signal transmitted by the signal light to generate an information signal; An optical receiving device comprising: (Item B-3) an optical transmitter for transmitting the signal light; The optical receiving device according to item B-2, An optical communication system comprising: (Item B-4) A program for causing a computer to function as the detection device described in item B-1. (Item B-5) A detection method for detecting polarization fluctuation of signal light propagated through an optical transmission line, comprising: a differential phase information acquisition step of acquiring information indicating a differential phase of an input light to be evaluated at each of one or more points in time; a determining step of determining whether the differential phase at at least some of the one or more time points satisfies a predetermined condition; having The predetermined conditions are: a first condition that the magnitude of the differential phase at at least one of the one or more time points is equal to or greater than a predetermined first threshold; a second condition that the number of time points at which the magnitude of the differential phase at a time point is equal to or greater than the first threshold value is equal to or greater than a predetermined second threshold value, among a plurality of time points that are included in an evaluation period that is a period having a predetermined length, the at least a portion of the one or more time points being equal to or greater than a predetermined second threshold value; a third condition that a ratio of a number of time points at which the magnitude of the differential phase at the time points is equal to the first threshold value or is greater than the first threshold value to a number of the time points included in the evaluation period is equal to a predetermined third threshold value or is greater than the third threshold value; A fourth condition that a movement angle at a fluctuation frequency of the trajectory on the Poincaré sphere, which is derived from the magnitude of the differential phase at each of the one or more time points, is equal to a predetermined fourth threshold value or is greater than the fourth threshold value; and a fifth condition that a moving angular velocity of the trajectory on the Poincaré sphere at the fluctuation frequency is equal to or greater than a predetermined fifth threshold value; At least one of Detection methods. [Explanation of symbols]

[0394] 10 Optical transmission line, 100 Communication system, 110 Optical signal transmitter, 120 Optical signal receiver, 130 Local oscillator, 140 Optical 90-degree hybrid, 152 Optical receiver, 154 Optical receiver, 162 AD converter, 164 AD converter, 170 Signal processing unit, 210 Digital signal processing circuit, 220 Decoding circuit, 230 Amplitude noise evaluation unit, 240 Phase noise evaluation unit, 242 Differential phase signal generator, 244 Histogram generator, 246 Standard deviation calculation unit, 320 Phase noise evaluation device, 340 Optical delay interferometer, 350 Optical receiver, 360 AD converter, 370 Signal processing unit, 422 Semi-transmitting mirror, 424 Semi-transmitting mirror, 432 Total reflection mirror, 434 Total reflection mirror, 436 Optical phase adjuster, 510 Substrate, 520 Waveguide, 526 Electrode, 530 Waveguide, 540 Optical delay interferometer, 610 Substrate, 620 Waveguide, 630 Ring resonator, 636 Electrode, 640 Optical delay interferometer, 710 Calibration unit, 820 Phase noise evaluation device, 850 Optical receiver, 860 AD converter, 870 Signal processing unit, 880 Optical phase control unit, 930 Standardization unit, 1040 Optical delay interferometer, 1060 Semi-transmitting mirror, 1140 Optical delay interferometer, 1160 Waveguide, 1240 Optical delay interferometer, 1260 Waveguide, 1340 Optical delay interferometer, 1350 Balanced optical receiver, 1352 Optical receiver, 1354 Optical receiver, 1356 Differential processing unit, 1452 Photodiode, 1454 Photodiode, 1456 Connection point, 1540 Optical delay interferometer, 1600 communication system, 1620 optical signal receiving device, 1640 demultiplexer, 1650 optical receiver, 1660 AD converter, 1670 signal processing unit, 1680 status monitoring device, 1722 communication optical signal output unit, 1724 monitoring optical signal output unit, 1730 multiplexer, 1852 photoelectric conversion element, 1854 integrating circuit, 1870 signal processing unit, 1922 increase detection unit, 1924 frequency analysis unit, 1926 movement angle derivation unit, 1928 movement angular velocity derivation unit, 1930 polarization fluctuation detection unit, 1940 information output unit, 2100 data table, 2120 number, 2122 time, 2124 output value, 2132 fluctuation frequency, 2134 movement angle, 2136 movement angular velocity, 2140 Success or failure, 2150 Detection result, 3000 Computer, 3001 DVD-ROM, 3010 Host controller, 3012 CPU, 3014RAM, 3016 GPU, 3018 display device, 3020 input / output controller, 3022 communication interface, 3024 hard disk drive, 3026 DVD-ROM drive, 3030 ROM, 3040 input / output chip, 3042 keyboard, 3500 communication system, 3520 optical signal receiving device, 3550 optical receiving unit, 3552 local oscillator, 3560 digital signal processor, 3562 signal input terminal, 3564 signal output terminal, 3566 control input terminal, 3654 optical 90-degree hybrid, 3656 optical receiver, 3662 AD converter, 3664 compensation unit, 3666 carrier phase estimation unit, 3668 decoding unit, 3720 chromatic dispersion equalization unit, 3740 polarization separation / polarization mode dispersion compensation unit, 3750 control signal receiving unit, 3760 FIR filter, 3770 A filter control unit, a setting unit, a updating unit, a delay unit, a state monitor, a polarimeter, and a signal processing unit.

Claims

1. A control device for controlling the operation of a compensation device that compensates for the birefringence and / or polarization mode dispersion experienced by signal light propagating through an optical transmission line by digital signal processing using a finite impulse response filter, a detection signal receiving unit that receives a detection signal, which is a signal indicating the detection result of a detection device that optically detects polarization fluctuations in the optical transmission line; a setting unit that determines a setting regarding the update frequency or update interval of the number of taps of the finite impulse response filter, or the update frequency or update interval of the tap coefficients of the finite impulse response filter, based on the detection result of the detection device; A control device comprising the above.

2. The setting unit determines whether the absolute value of the amount of change in the polarization fluctuation is greater than a predetermined threshold based on the detection result of the detection device, and when it is determined that the absolute value of the amount of change in the polarization fluctuation is greater than the threshold, determines to (i) increase the set value of the update frequency of the number of taps and / or the tap coefficients to be greater than the current set value, (ii) set the set value of the update frequency of the number of taps and / or the tap coefficients to a predetermined first value, (iii) decrease the set value of the update interval of the number of taps and / or the tap coefficients to be smaller than the current set value, or (iv) set the set value of the update interval of the number of taps and / or the tap coefficients to a predetermined second value. The control device according to Claim 1.

3. The setting unit determines whether the absolute value of the amount of change in the polarization fluctuation is greater than a predetermined threshold based on the detection result of the detection device, and when it is not determined that the absolute value of the amount of change in the polarization fluctuation is greater than the threshold, determines to (i) decrease the set value of the update frequency of the number of taps and / or the tap coefficients to be smaller than the current set value, (ii) set the set value of the update frequency of the number of taps and / or the tap coefficients to a predetermined third value, (iii) increase the set value of the update interval of the number of taps and / or the tap coefficients to be greater than the current set value, or (iv) set the set value of the update interval of the number of taps and / or the tap coefficients to a predetermined fourth value. The control device according to Claim 1.

4. An update unit that updates the number of taps or the tap coefficients at the update frequency or update interval determined by the setting determined by the setting unit. further comprising The control device according to claim 1.

5. The compensation device compensates for the birefringence and / or polarization mode dispersion received by the first signal light propagated through the optical transmission line, The detection device optically detects the polarization fluctuation of the second signal light propagated through the optical transmission line, The first signal light and the second signal light have different wavelengths from each other, The control device according to claim 1.

6. The detection device includes an optical delay interferometer, a polarimeter, a polarization state measuring device, or a Stokes parameter measuring device for optically detecting the polarization fluctuation of the second signal light. The control device according to claim 5.

7. The control device controls the operations of the plurality of compensation devices that compensate for the birefringence and / or polarization mode dispersion received by each of the plurality of signal lights propagated through the optical transmission line by digital signal processing using a finite impulse response filter, Based on the detection result of the detection device, the setting unit determines the setting regarding the plurality of finite impulse response filters arranged in the plurality of compensation devices, Each of the plurality of signal lights has a different wavelength, The control device according to claim 1.

8. A compensation device that compensates for the birefringence and / or polarization mode dispersion received by the signal light propagated through the optical transmission line, A finite impulse response filter for compensating for the birefringence and / or polarization mode dispersion received by the signal light, The control device according to claim 1, A compensation device comprising:

9. A program for causing a computer to function as the control device according to any one of claims 1 to 7.

10. A control method for controlling the operation of a compensation device that compensates for the birefringence and / or polarization mode dispersion received by the signal light propagated through the optical transmission line by digital signal processing using a finite impulse response filter, A detection signal receiving step of receiving a detection signal that is a signal indicating the detection result of a detection device that optically detects the polarization fluctuation in the optical transmission line, A setting step of determining a setting regarding the update frequency or update interval of the number of taps of the finite impulse response filter, or the update frequency or update interval of the tap coefficients of the finite impulse response filter based on the detection result of the detection device, A control method comprising: