Optical power distribution estimation device, optical power distribution estimation method, and computer program
The optical power distribution estimation device and method enhance the spatial resolution and accuracy of optical power distribution estimation using digital signal processing, addressing the limitations of conventional techniques.
Patent Information
- Application Number
- JP2024546557
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2022-09-13
- Publication Date
- 2025-10-23
- Estimated Expiration
- 2042-09-13
AI Technical Summary
Conventional optical power distribution estimation techniques using digital signal processing suffer from lower spatial resolution and estimation accuracy.
An optical power distribution estimation device and method that includes an optical power distribution estimation unit, a spatial response function calculation unit, and a digital filter application unit to estimate optical power distribution with high spatial resolution and accuracy using digital signal processing.
Enables accurate estimation of optical power distribution with high spatial resolution through digital signal processing, improving the precision and effectiveness of optical transmission system monitoring.
Smart Images

Figure 0007759009000011 
Figure 0007759009000012 
Figure 0007759009000013
Abstract
Description
[Technical Field]
[0001] The present invention relates to an optical power distribution estimation device, an optical power distribution estimation method, and a computer program. [Background technology]
[0002] When operating an optical transmission system, the basic characteristics of the optical fiber that makes up the optical transmission path have a significant impact on transmission performance. Here, the basic characteristics of optical fiber include optical power, distribution of loss and dispersion, and location of fault points. For example, if the optical power is too high, the influence of nonlinear optical effects in the optical fiber increases, resulting in a decrease in the signal-to-noise ratio (hereinafter referred to as "SNR" (Signal-to-Noise Ratio)). If the loss is too high, the optical power attenuates accordingly, resulting in a decrease in SNR.
[0003] Therefore, it is important to know the characteristics of optical fibers in the operation, maintenance, and monitoring of optical transmission systems. Optical transmission paths are composed of various devices other than optical fibers, such as optical amplifiers and optical filters. Knowing the characteristics of these devices is also important in the operation, maintenance, and monitoring of optical transmission systems.
[0004] The characteristics of devices such as optical fibers, optical amplifiers, and optical filters can generally be measured using analog measuring instruments such as OTDRs (Optical Time Domain Reflectometers) and optical spectrum analyzers. However, measurements using analog measuring instruments require direct measurement of each optical node and optical fiber, which poses the problem of high equipment and operating costs.
[0005] To solve this problem, in recent years, digital longitudinal monitoring (DLM) has been proposed as a technology that detects the characteristics of various devices in an optical transmission system by digital signal processing on the receiving side of the system, instead of measurements using analog measuring instruments (see, for example, Non-Patent Documents 1 and 2). DLM is based on a digital coherent optical transmission system, and monitors the optical power and other characteristics of the optical transmission line by performing digital signal processing on the received signal obtained by coherently detecting the optical signal transmitted by the optical transmission line. [Prior art documents] [Non-patent literature]
[0006] [Non-Patent Document 1] T. Tanimura, et al., “Fiber-Longitudinal Anomaly Position Identification Over Multi-Span Transmission Link Out of Receiver-end Signals”, JLT, 38(9), 2020. [Non-patent document 2] T. Sasai, et al., “Digital longitudinal monitoring of Optical Fiber Communication Link”, JLT, 40(8), 2022. Summary of the Invention [Problem to be solved by the invention]
[0007] However, while conventional optical power distribution estimation techniques using digital signal processing enable simpler measurements than analog measuring instruments, they have the problem of lower spatial resolution and estimation accuracy.
[0008] In view of the above circumstances, an object of the present invention is to provide a technique for estimating optical power distribution using digital signal processing, which is capable of estimating optical power distribution with high spatial resolution and high accuracy. [Means for solving the problem]
[0009] One aspect of the present invention is an optical power distribution estimation device that includes an optical power distribution estimation unit that estimates an optical power distribution based on a received signal that is based on an optical signal transmitted from an optical transmitting device and received via an optical transmission path, and a transmitted signal that is restored based on the received signal; a spatial response function calculation unit that calculates a spatial response function based on the transmitted signal and a dispersion value of the optical transmission path; and a digital filter application unit that obtains an ideal output by applying a digital filter based on the spatial response function to the optical power distribution.
[0010] One aspect of the present invention is an optical power distribution estimation method that estimates an optical power distribution based on a received signal that is based on an optical signal transmitted from an optical transmitting device and received via an optical transmission path, and a transmitted signal restored based on the received signal, calculates a spatial response function based on the transmitted signal and a dispersion value of the optical transmission path, and applies a digital filter based on the spatial response function to the optical power distribution to obtain an ideal output.
[0011] One aspect of the present invention is a computer program for causing a computer to execute an optical power distribution estimation step of estimating an optical power distribution based on a received signal that is based on an optical signal transmitted from an optical transmitting device and received via an optical transmission path, and a transmitted signal restored based on the received signal; a spatial response function calculation step of calculating a spatial response function based on the transmitted signal and a dispersion value of the optical transmission path; and a digital filter application step of obtaining an ideal output by applying a digital filter based on the spatial response function to the optical power distribution. [Effects of the Invention]
[0012] According to the present invention, it is possible to estimate an optical power distribution with high spatial resolution and high accuracy in an optical power distribution estimation technique using digital signal processing. [Brief explanation of the drawings]
[0013] [Figure 1] FIG. 10 is a diagram for explaining an optical power distribution estimated using a conventional correlation method. [Figure 2] 1 is a diagram illustrating an example of the configuration of an optical receiving device according to a first embodiment. [Figure 3] 4 is a flowchart showing a flow of processing performed by the optical receiving device according to the first embodiment. [Figure 4] FIG. 10 is a diagram illustrating an example of the configuration of an optical transmission system according to a modified example of the first embodiment. [Figure 5] FIG. 10 is a diagram illustrating an example of the configuration of an optical receiving device according to a second embodiment. [Figure 6] 10 is a flowchart showing a flow of processing performed by an optical receiving device according to the second embodiment. [Figure 7] FIG. 10 is a diagram illustrating an example of the configuration of an optical transmission system according to a modified example of the second embodiment. [Figure 8] FIG. 10 is a diagram illustrating an example of the configuration of an optical receiving device according to a third embodiment. [Figure 9] FIG. 10 is a diagram illustrating an example of the configuration of a digital filter application unit according to a third embodiment. DETAILED DESCRIPTION OF THE INVENTION
[0014] Hereinafter, an embodiment of the present invention will be described with reference to the drawings.
[0015] (overview) First, an overview of the present invention will be described. In the present invention, a digital filter is designed for an optical power distribution estimation result obtained by a method proposed as a technology for estimating optical power distribution, and the designed digital filter is convolved with the optical power distribution estimation result to obtain an ideal output. Here, the methods proposed as a technology for estimating optical power distribution include, for example, the correlation method and the least squares method. Below, a specific configuration for realizing the above processing using these methods will be described.
[0016] (First embodiment) In the first embodiment, a configuration for estimating an optical power distribution using a conventional correlation method will be described. Here, the conventional correlation method is, for example, the technique shown in Non-Patent Document 1. The optical power distribution γ′(z k ) is expressed as the following formula (1). Note that "~" is placed above γ'. z k represents the measurement position of the optical power on the optical transmission line. The symbol ×○c (× is written in a circle) in equation (1) represents the continuous convolution symbol. The optical transmission line is, for example, an optical fiber.
[0017]
number
[0018] In equation (1), P0 represents the power (constant) of the signal used in the correlation method, ε represents a real number arbitrarily set by the user, γ' represents γP(z), and γ is a nonlinear constant (W -1 km -1 ), P(z) represents the true optical power distribution (to be estimated) in the optical transmission line, and g Re (z) represents the spatial response function. Here, the spatial response function g Re (z) is expressed as the following equation (2).
[0019]
number
[0020] The symbols in equation (2) are expressed as equations (3) to (5) below. Note that A in equation (2) represents the transmission signal. β2(z) and β3(z) in equation (3) represent the dispersion values of the optical transmission line.
[0021]
number
[0022]
number
[0023]
number
[0024] Based on the above, the optical power distribution estimated using the conventional correlation method is expressed as a function of the spatial response function g(z) in the true optical power distribution (proportional to the true optical power distribution) as shown in Figure 1. Re Therefore, the spatial response function g Re If (z) is known in advance, the true optical power distribution γ'(z) can be reconstructed based on the following equation (6).
[0025]
number
[0026] In addition, the spatial response function g Re (z) can be uniquely determined if the transmission signal A[n] used and the dispersion values β2(z) and β3(z) of the optical transmission line are known. Below, based on the results of the above considerations, a specific configuration for obtaining the true optical power distribution γ'(z) will be described.
[0027] FIG. 2 is a diagram illustrating an example of the configuration of an optical receiving device 10 according to the first embodiment. The optical receiving device 10 uses a correlation method as an estimation algorithm for estimating optical power distribution. The optical receiving device 10 is connected to an optical transmitting device provided in an optical transmission system via an optical transmission path. The optical receiving device 10 receives a transmission signal transmitted from the optical transmitting device via the optical transmission path. The optical receiving device 10 includes a coherent receiver 11, a demodulation / decoding unit 12, a transmission signal restoration unit 13, a chromatic dispersion application unit 14, an absolute value calculation unit 15, an optical power distribution estimation unit 16, a spatial response function calculation unit 17, and a digital filter application unit 18. The transmission signal restoration unit 13, the chromatic dispersion application unit 14, the absolute value calculation unit 15, the optical power distribution estimation unit 16, the spatial response function calculation unit 17, and the digital filter application unit 18 are configured as an optical power distribution estimation device.
[0028] The coherent receiver 11 is connected to an optical transmission line and receives an optical signal (e.g., a transmission signal) transmitted through the optical transmission line and performs coherent detection. The coherent receiver 11 separates the received optical signal into X-polarized and Y-polarized waves. The coherent receiver 11 detects the I- and Q-components of each of the X- and Y-polarized waves by causing interference between each of the X- and Y-polarized optical signals after polarization separation and a laser beam emitted from a local oscillator light source provided inside the coherent receiver 11. The coherent receiver 11 converts each of the I- and Q-component optical signals of each of the X- and Y-polarized waves into four analog electrical signals. The coherent receiver 11 converts the converted four analog signals into four digital signals using four internal analog-to-digital converters and outputs the converted signals. Hereinafter, the four digital signals output by the coherent receiver 11 will be referred to as received signals.
[0029] The demodulation / decoding unit 12 decodes the received signal output from the coherent receiver 11 while compensating for influences caused by the optical transmission path. Examples of influences caused by the optical transmission path include chromatic dispersion, polarization fluctuation, frequency offset, and carrier phase. The demodulation / decoding unit 12 includes a chromatic dispersion compensator 121, a polarization fluctuation compensator 122, a frequency offset compensator 123, a carrier phase compensator 124, a symbol decision unit 125, and a decoding unit 126.
[0030] The chromatic dispersion compensator 121 estimates the chromatic dispersion experienced in the optical transmission line, and compensates for the estimated chromatic dispersion in the received signal output from the coherent receiver 11 .
[0031] The polarization fluctuation compensator 122 compensates for distortion that occurs in the waveform of the received signal in the optical transmission path, using the received signal whose chromatic dispersion has been compensated for by the chromatic dispersion compensator 121. That is, the polarization fluctuation compensator 122 corrects code errors that occur in the received signal due to inter-symbol interference (ISI) in the optical transmission path. For example, the polarization fluctuation compensator 122 may perform adaptive equalization processing using an FIR (Finite Impulse Response) filter in accordance with set tap coefficients. Note that the polarization fluctuation compensator 122 may also compensate for distortion that occurs in the waveform of the received signal using a method other than the above for adaptively compensating for polarization fluctuation.
[0032] The frequency offset compensator 123 compensates for the frequency offset of the received signal that has been compensated for by the polarization fluctuation compensator 122 .
[0033] The carrier phase compensation unit 124 compensates for the phase offset of the received signal after frequency offset compensation.
[0034] The symbol decision unit 125 makes a symbol decision on the received signal after phase offset compensation.
[0035] The decoding unit 126 decodes the received signal based on the result of the symbol determination by the symbol determining unit 125 .
[0036] The transmission signal restoration unit 13 restores the transmission signal using the received signal decoded by the demodulation and decoding unit 12. That is, the transmission signal restoration unit 13 restores the transmission signal transmitted from the optical transmitting device based on the signal after the influence caused by the optical transmission path has been compensated for. The transmission signal restoration unit 13 includes a mapping unit 131 and a Nyquist filter 132.
[0037] Mapping section 131 maps the decoded received signal. Nyquist filter 132 performs filtering on the mapped received signal to restore the transmitted signal.
[0038] The chromatic dispersion application unit 14 estimates the chromatic dispersion suffered in the optical transmission line and applies the estimated chromatic dispersion value to the received signal output from the polarization fluctuation compensation unit 122. This restores the received signal in which only the polarization fluctuation has been compensated for with respect to the signal output from the coherent receiver 11. The chromatic dispersion application unit 14 outputs the restored received signal to the optical power distribution estimating unit 16.
[0039] The absolute value calculation unit 15 calculates the absolute value of the transmission signal restored by the transmission signal restoration unit 13 and outputs the transmission signal with the absolute value calculated to the optical power distribution estimation unit 16 .
[0040] The optical power distribution estimating unit 16 estimates the optical power distribution (optical transmission characteristics) of the optical transmission path using an estimation algorithm based on a correlation method. It includes a partial chromatic dispersion compensating unit 161, a nonlinear calculating unit 162, a residual dispersion compensating unit 163, an absolute value calculating unit 164, and a correlation calculating unit 165.
[0041] The partial chromatic dispersion compensator 161 is connected to the optical receiver 10 at the optical power measurement position z k (k is a natural number equal to or greater than 0) and compensates for the estimated partial chromatic dispersion with respect to the received signal to which the chromatic dispersion value has been applied.
[0042] The nonlinear calculation unit 162 performs nonlinear calculation shown in the following equation (7) on the received signal whose chromatic dispersion has been partially compensated for by the partial chromatic dispersion compensator 161. In equation (7), u out represents the output from the nonlinear calculation unit 162, and u in represents the received signal with the partial chromatic dispersion value applied.
[0043]
number
[0044] The residual dispersion compensator 163 measures the optical power at the optical power measurement position z k The residual chromatic dispersion corresponding to the distance from the optical fiber to the optical transmitter is estimated, and the received signal after the nonlinear operation is compensated for the estimated residual chromatic dispersion.
[0045] The absolute value calculation unit 164 calculates the absolute value of the received signal for which the residual chromatic dispersion has been compensated, and outputs the received signal for which the absolute value has been calculated to the correlation calculation unit 165 .
[0046] The correlation calculation unit 165 calculates the correlation between the transmission signal, which is output from the absolute value calculation unit 15 and has the absolute value taken, and the reception signal, which is output from the absolute value calculation unit 164 and has the absolute value taken. The optical power distribution estimation unit 16 performs this process for each optical power measurement position. The correlation calculation unit 165 plots the correlation results (correlation values) obtained for each optical power measurement position to calculate the estimated power distribution γ'(z k The estimated power distribution γ′(z k ) is the above equation (1).
[0047] The spatial response function calculation unit 17 calculates the spatial response function g based on the above equation (2) using the restored transmission signal output from the transmission signal restoration unit 13. Re Calculate (z).
[0048] The digital filter application unit 18 applies the spatial response function g calculated by the spatial response function calculation unit 17 to the Re (z) is used to create a digital filter g -1 Re For example, the digital filter application unit 18 designs the digital filter g -1 Re (z) or by using the zero-forcing criterion, the digital filter g -1 Re The digital filter application unit 18 may calculate the estimated power distribution γ′(z k ) with the digital filter g -1 ReThe ideal output is obtained by convolving (z).
[0049] FIG. 3 is a flowchart showing the flow of processing performed by the optical receiving device 10 in the first embodiment. The coherent receiver 11 receives a transmission signal transmitted from an optical transmitter via an optical transmission path (step S101). The coherent receiver 11 outputs the received signal to the demodulation and decoding unit 12. The chromatic dispersion compensator 121 of the demodulation and decoding unit 12 compensates for chromatic dispersion in the received signal output from the coherent receiver 11 (step S102). The chromatic dispersion compensator 121 outputs the chromatic dispersion-compensated received signal to the polarization fluctuation compensator 122. The polarization fluctuation compensator 122 compensates for distortion occurring in the waveform of the received signal in the optical transmission path, using the chromatic dispersion-compensated received signal output from the chromatic dispersion compensator 121 (step S103). The polarization fluctuation compensator 122 branches the polarization fluctuation-compensated received signal and outputs it to the frequency offset compensator 123 and the chromatic dispersion application unit 14 (step S104).
[0050] The frequency offset compensator 123 compensates for the frequency offset of the received signal that has been compensated for by the polarization fluctuation compensator 122 (step S105). The frequency offset compensator 123 outputs the received signal after frequency offset compensation to the carrier phase compensator 124. The carrier phase compensator 124 compensates for the phase offset of the received signal after frequency offset compensation by the frequency offset compensator 123 (step S106). The carrier phase compensator 124 outputs the received signal after phase offset compensation to the symbol decision unit 125.
[0051] The symbol decision unit 125 performs symbol decision on the received signal after phase offset compensation (step S107). The symbol decision unit 125 outputs the result of the symbol decision to the decoding unit 126. The decoding unit 126 decodes the received signal based on the result of the symbol decision by the symbol decision unit 125 (step S108). The decoding unit 126 outputs the decoded received signal to the transmission signal restoration unit 13.
[0052] The transmission signal restoration unit 13 restores the transmission signal using the reception signal decoded by the demodulation and decoding unit 12 (step S109). The transmission signal restoration unit 13 outputs the restored transmission signal to the absolute value calculation unit 15 and the spatial response function calculation unit 17. The absolute value calculation unit 15 takes the absolute value of the transmission signal restored by the transmission signal restoration unit 23 (step S110). The absolute value calculation unit 15 outputs the transmission signal whose absolute value has been taken to the optical power distribution estimation unit 16.
[0053] The spatial response function calculation unit 17 calculates the spatial response function g based on the above equation (2) using the restored transmission signal output from the transmission signal restoration unit 13. Re (z) (step S111). The spatial response function calculation unit 17 calculates the spatial response function g Re The chromatic dispersion applying unit 14 estimates the chromatic dispersion suffered in the optical transmission path, and applies the estimated chromatic dispersion value to the received signal output from the chromatic dispersion compensating unit 121 (step S112). The chromatic dispersion applying unit 14 outputs the received signal to which the chromatic dispersion value has been applied to the optical power distribution estimating unit 16.
[0054] The partial chromatic dispersion compensator 161 sets k=0 (step S113), and outputs the optical power measurement position z k The partial chromatic dispersion compensator 161 estimates a partial chromatic dispersion value that is a chromatic dispersion value that is a distance from the optical receiving device 20 to the optical power measurement position z0. For example, since k=0 in step S113, the partial chromatic dispersion compensator 161 estimates a partial chromatic dispersion value that is a chromatic dispersion value that is a distance from the optical receiving device 20 to the optical power measurement position z0. The partial chromatic dispersion compensator 161 compensates for the estimated partial chromatic dispersion value with respect to the received signal to which the chromatic dispersion value output from the chromatic dispersion application unit 14 has been applied (step S114). The partial chromatic dispersion compensator 161 outputs the received signal with the partial chromatic dispersion value compensated for to the nonlinear calculation unit 162.
[0055] The nonlinear calculation unit 162 performs nonlinear calculation based on the above formula (7) using the reception signal after partial chromatic dispersion value compensation output from the partial chromatic dispersion compensation unit 161 (step S115). The nonlinear calculation unit 162 outputs the reception signal after nonlinear calculation to the residual dispersion compensation unit 163. The residual dispersion compensation unit 163 calculates the optical power measurement position z k The residual dispersion compensator 163 estimates a residual chromatic dispersion value that corresponds to the distance from the optical power measurement position z0 to the optical transmitter. For example, the residual dispersion compensator 163 estimates a residual chromatic dispersion value that is a chromatic dispersion value that corresponds to the distance from the optical power measurement position z0 to the optical transmitter. The residual dispersion compensator 163 compensates for the estimated residual chromatic dispersion value in the received signal after nonlinear operation output from the nonlinear operation unit 162 (step S116). The residual dispersion compensator 163 outputs the received signal compensated for the residual chromatic dispersion value to the absolute value calculation unit 164.
[0056] The absolute value calculation unit 164 calculates the absolute value of the received signal in which the residual chromatic dispersion has been compensated (step S117). The absolute value calculation unit 164 outputs the received signal in which the absolute value has been calculated to the correlation calculation unit 165. The correlation calculation unit 165 calculates the correlation between the transmitted signal in which the absolute value has been calculated and output from the absolute value calculation unit 165, and the received signal in which the absolute value has been calculated and output from the absolute value calculation unit 164 (step S118). Thereafter, the correlation calculation unit 165 determines whether or not a termination condition is satisfied (step S119). The termination condition here is a condition for terminating the calculation of the correlation, and may be, for example, that the calculation of the correlation up to all optical power measurement positions has been completed.
[0057] If the correlation calculation unit 165 determines that the termination condition is not satisfied (step S119-NO), it adds 1 to k (step S120). Thereafter, the optical receiving device 10 repeatedly executes the processes from step S114 onwards. For example, if the value after the addition is k=1, the partial chromatic dispersion compensating unit 161 estimates a value of chromatic dispersion corresponding to the distance from the optical receiving device 10 to the optical power measurement position z1 in the process of step S114. The partial chromatic dispersion compensating unit 161 compensates for the estimated partial chromatic dispersion value for the received signal after chromatic dispersion application output from the chromatic dispersion application unit 14.
[0058] Thereafter, the processes from steps S115 to S118 are executed with k=1. Then, the correlation calculation unit 165 determines again whether the termination condition is met (step S119). In this way, the processes from steps S114 to S118 are repeatedly executed until correlations are acquired at all optical power measurement positions.
[0059] In the process of step S119, if it is determined that the termination condition is satisfied (step S119-YES), the correlation calculation unit 165 performs optical power estimation using the correlation results acquired for each optical power measurement position (step S121). Specifically, the correlation calculation unit 165 plots the correlation results acquired for each optical power measurement position to calculate an estimated power distribution γ'(z k The correlation calculation unit 165 estimates the estimated power distribution γ′(z k ) is output to the digital filter application unit 18.
[0060] The digital filter application unit 18 applies the spatial response function g calculated by the spatial response function calculation unit 17 in the process of step S111. Re (z) and the estimated power distribution γ′(z k ) and the estimated power distribution γ´(z k ) is subjected to a digital filter to obtain an ideal output (step S122).
[0061] The optical receiving device 10 configured as described above enables highly accurate estimation of optical power distribution with high spatial resolution using digital signal processing. Specifically, the optical receiving device 10 includes an optical power distribution estimator 16 that estimates the optical power distribution based on a received signal, which is based on an optical signal transmitted from an optical transmitting device and received via an optical transmission line, and a transmitted signal restored based on the received signal; a spatial response function calculator 17 that calculates a spatial response function based on the transmitted signal and the dispersion value of the optical transmission line; and a digital filter applicator 18 that obtains an ideal output by applying a digital filter based on the spatial response function to the optical power distribution. In this way, the optical receiving device 10 calculates the spatial response function in advance and designs a digital filter using the calculated spatial response function. The optical receiving device 10 can cancel the spatial response function by convolving the designed digital filter with the estimated optical power distribution. As a result, the optical receiving device 10 obtains a true power distribution, which is the ideal output. Therefore, in the optical power distribution estimation technique using digital signal processing, it becomes possible to estimate the optical power distribution with high spatial resolution and high accuracy.
[0062] (Variation 1) The order in which the demodulation / decoding unit 12 performs compensation is not limited to the above-mentioned order, and the order in which the demodulation / decoding unit 12 performs compensation may be any order.
[0063] (Variation 2) The optical power distribution estimation device included in the optical receiving device 10 may be included in another device. The other device may be, for example, a network controller that manages the optical transmission system. FIG. 4 is a diagram showing an example of the configuration of an optical transmission system 100 according to a modification of the first embodiment. The optical transmission system 100 includes an optical transmitting device (not shown), an optical receiving device 10a, and a network controller 30. The optical transmission system 100 may include a plurality of optical receiving devices 10a. The optical transmitting device (not shown) and the optical receiving device 10a are connected by an optical transmission path, and the optical receiving device 10a and the network controller 30 are connected by an electric line. The optical receiving device 10a receives a transmission signal transmitted from an optical transmitting device connected via the optical transmission path. The network controller 30 is a higher-level device that manages the optical transmission system 100.
[0064] The optical receiving device 10a includes a coherent receiver 11 and a demodulation / decoding unit 12. The network controller 30 includes a transmission signal restoration unit 13, a chromatic dispersion application unit 14, an absolute value calculation unit 15, an optical power distribution estimation unit 16, a spatial response function calculation unit 17, and a digital filter application unit 18. The processes performed by the transmission signal restoration unit 13, the chromatic dispersion application unit 14, the absolute value calculation unit 15, the optical power distribution estimation unit 16, the spatial response function calculation unit 17, and the digital filter application unit 18 are basically the same as those performed by the functional units of the same names shown in Figure 2. The differences will be explained below.
[0065] The coherent receiver 11 outputs the received signal to the demodulation and decoding unit 12. The demodulation and decoding unit 12 outputs the chromatic dispersion compensated received signal to the chromatic dispersion application unit 14 provided in the network controller 30 via an electrical line, and outputs the decoded received signal to the transmission signal restoration unit 13 provided in the network controller 30 via an electrical line.
[0066] Each functional unit included in the network controller 30 performs the same processing as in the first embodiment.
[0067] According to the optical transmission system 100 configured as above, the estimation of the optical power distribution and the calculation of the ideal output are performed in the network controller 30, which is a host device that manages the optical transmission system 100. This reduces the processing load on one optical receiving device 10a.
[0068] Furthermore, when multiple optical receiving devices 10a are connected to the network controller 30, the network controller 30 can estimate the optical power distribution and calculate the ideal output for each optical receiving device 10a. This eliminates the need for each optical receiving device 10a to estimate the optical power distribution and calculate the ideal output, so each optical receiving device 10a does not need to be equipped with a function for estimating the optical power distribution and a function for calculating the ideal output. Furthermore, since a single network controller 30 estimates the optical power distribution and calculates the ideal output for multiple optical receiving devices 10a, efficient processing is possible.
[0069] (Second embodiment) In the second embodiment, a configuration for estimating an optical power distribution using a correlation method different from conventional correlation methods will be described. Specifically, in the second embodiment, a nonlinear calculation is performed that does not include an offset P0 that occurs in conventional correlation methods. In conventional correlation methods, equation (7) is used for the nonlinear calculation, and an offset P0 occurs due to the constant term (=1) when exp in equation (7) is expanded in Taylor series. When an offset P0 occurs, it is impossible to estimate the amount of power change. In the second embodiment, only the first-order term obtained by expanding equation (7) in Taylor series is used for the nonlinear calculation. This makes it possible to estimate the amount of power change.
[0070] FIG. 5 is a diagram illustrating an example of the configuration of an optical receiving device 20 according to the second embodiment. The optical receiving device 20 is connected to an optical transmitting device provided in an optical transmission system via an optical transmission path. The optical receiving device 20 receives a transmission signal transmitted from the optical transmitting device via the optical transmission path. The optical receiving device 20 includes a coherent receiver 21, a demodulation / decoding unit 22, a transmission signal restoration unit 23, a pre-processing unit 24, and an optical power distribution estimating unit 25. The transmission signal restoration unit 23, the pre-processing unit 24, and the optical power distribution estimating unit 25 are configured as an optical power distribution estimating device. The processes performed by the coherent receiver 21, the demodulation / decoding unit 22, and the transmission signal restoration unit 23 are basically the same as those of the coherent receiver 11, the demodulation / decoding unit 12, and the transmission signal restoration unit 13 according to the first embodiment. Therefore, the following description will focus on the differences from the first embodiment.
[0071] The pre-processing unit 24 performs a predetermined process on the transmission signal restored by the transmission signal restoration unit 23. Here, the predetermined process is a process of applying a value corresponding to the influence caused by the optical transmission path to the transmission signal in order to make the transmission signal closer to the received signal. The pre-processing unit 24 includes a polarization fluctuation application unit 241, a carrier phase application unit 242, and a frequency offset application unit 243.
[0072] The polarization fluctuation applying unit 241 applies to the transmission signal restored by the transmission signal restoring unit 23 a value that is the same as the distortion that has occurred in the waveform of the reception signal compensated for by the polarization fluctuation compensating unit 222 .
[0073] The carrier phase applying unit 242 applies the same value as the phase offset compensated for by the carrier phase compensating unit 224 to the transmission signal to which the polarization fluctuation applying unit 241 has applied the same value as the distortion.
[0074] The frequency offset applying unit 243 applies the same value as the phase offset compensated by the frequency offset compensating unit 223 to the transmission signal to which the same value as the phase offset has been applied by the carrier phase applying unit 242 .
[0075] As described above, the pre-processing unit 24 generates a signal by removing the chromatic dispersion value from the received signal received by the coherent receiver 21. Hereinafter, the transmission signal processed in the pre-processing unit 24 will be referred to as the pre-processed transmission signal.
[0076] The optical power distribution estimator 25 estimates the optical power distribution (optical transmission characteristics) of the optical transmission path using an estimation algorithm based on a correlation method. The optical power distribution estimator 25 includes a partial chromatic dispersion applicator 251, a nonlinear calculator 252, a residual dispersion applicator 253, and a correlation calculator 254.
[0077] The partial chromatic dispersion applying unit 251 applies a partial chromatic dispersion value to the pre-processed transmission signal.
[0078] The nonlinear calculation unit 252 performs nonlinear calculation on the transmission signal to which the partial chromatic dispersion value has been applied by the partial chromatic dispersion application unit 251. More specifically, the nonlinear calculation unit 252 performs nonlinear calculation on the transmission signal to which the partial chromatic dispersion value has been applied, based on equation (8) using first-order terms obtained by Taylor expansion of the equation used for phase rotation. Equation (8) is an equation using first-order terms of Taylor expansion of the conventional nonlinear calculation unit 162. In equation (8), u out represents the output by the nonlinear calculation unit 252, and u in represents the transmitted signal to which a value of partial chromatic dispersion has been applied.
[0079]
number
[0080] The residual dispersion applying unit 253 applies the residual chromatic dispersion value to the transmission signal after the nonlinear operation.
[0081] The correlation calculation unit 254 calculates the correlation between the received signal output from the coherent receiver 21 and the transmitted signal to which the residual chromatic dispersion value output from the residual dispersion application unit 253 has been applied. The correlation calculation unit 254 performs this process for each optical power measurement position. The correlation calculation unit 254 plots the correlation results (correlation values) obtained for each optical power measurement position to calculate an estimated power distribution γ'(z k ) is estimated. At this time, the estimated power output by the correlation calculation unit 254 is a complex value. When plotting, the real part of the estimated power or the absolute value is taken and then plotted.
[0082] The spatial response function calculation unit 26 calculates the spatial response function g based on the above equation (2) using the transmission signal restored by the transmission signal restoration unit 23. Re Calculate (z).
[0083] The digital filter application unit 27 applies the spatial response function g calculated by the spatial response function calculation unit 26 to the Re (z) is used to create a digital filter g -1 Re The digital filter application unit 27 designs the estimated power distribution γ′(z k ) with the digital filter g -1 Re The ideal output is obtained by convolving (z).
[0084] FIG. 6 is a flowchart showing the flow of processing by the optical receiving device 20 in the second embodiment. The coherent receiver 21 receives a transmission signal transmitted from an optical transmitter via an optical transmission path (step S201). The coherent receiver 21 outputs the received signal. The received signal output from the coherent receiver 21 is branched and input to the demodulation / decoding unit 22 and the optical power distribution estimation unit 25 (step S202).
[0085] The chromatic dispersion compensator 221 estimates the chromatic dispersion suffered in the optical transmission path, and compensates for the estimated chromatic dispersion in the received signal output from the coherent receiver 21 (step S203). The chromatic dispersion compensator 221 outputs the received signal after chromatic dispersion compensation to the polarization fluctuation compensator 222. The polarization fluctuation compensator 222 compensates for distortion occurring in the waveform of the received signal in the optical transmission path, using the received signal after chromatic dispersion output from the chromatic dispersion compensator 221 (step S204). The polarization fluctuation compensator 222 outputs the compensated received signal to the frequency offset compensator 223.
[0086] The frequency offset compensator 223 compensates for the frequency offset of the received signal that has been compensated for by the polarization fluctuation compensator 222 (step S205). The frequency offset compensator 223 outputs the received signal after frequency offset compensation to the carrier phase compensator 224. The carrier phase compensator 224 compensates for the phase offset of the received signal after frequency offset compensation by the frequency offset compensator 223 (step S206). The carrier phase compensator 224 outputs the received signal after phase offset compensation to the symbol decision unit 225.
[0087] The symbol determination unit 225 performs symbol determination on the received signal after phase offset compensation (step S207). The symbol determination unit 225 outputs the result of the symbol determination to the decoding unit 226. The decoding unit 226 decodes the received signal based on the result of the symbol determination by the symbol determination unit 225 (step S208). The decoding unit 226 outputs the decoded received signal to the transmission signal restoration unit 23.
[0088] The transmission signal restoration unit 23 restores the transmission signal using the received signal decoded by the demodulation and decoding unit 22 (step S209). The transmission signal restoration unit 23 outputs the restored transmission signal to the pre-processing unit 24 and the spatial response function calculation unit 26. The spatial response function calculation unit 26 uses the transmission signal output from the transmission signal restoration unit 23 to calculate the spatial response function g Re (z) (step S210). The spatial response function calculation unit 26 calculates the spatial response function g Re(z) is output to the digital filter application unit 27.
[0089] The polarization fluctuation application unit 241 applies, to the transmission signal restored by the transmission signal restoration unit 23, a value equal to the distortion that occurred in the waveform of the reception signal compensated for by the polarization fluctuation compensation unit 222 (step S211). The polarization fluctuation application unit 241 outputs the transmission signal after application to the carrier phase application unit 242.
[0090] The carrier phase applying unit 242 applies the same value as the phase offset compensated for by the carrier phase compensating unit 224 to the transmission signal after application output from the polarization fluctuation applying unit 241 (step S212). The carrier phase applying unit 242 outputs the transmission signal after application to the frequency offset applying unit 243. The frequency offset applying unit 243 applies the same value as the frequency offset compensated for by the frequency offset compensating unit 223 to the transmission signal after application output from (step S213). The frequency offset applying unit 243 outputs the transmission signal after application to the optical power distribution estimating unit 25.
[0091] The partial chromatic dispersion application unit 251 sets k=0 (step S214) and outputs the optical power measurement position z k The partial chromatic dispersion application unit 251 estimates a partial chromatic dispersion value that is a chromatic dispersion value that is a distance from the optical transmitter to the optical power measurement position z0. For example, since k=0 in step S214, the partial chromatic dispersion application unit 251 estimates a partial chromatic dispersion value that is a chromatic dispersion value that is a distance from the optical transmitter to the optical power measurement position z0. The partial chromatic dispersion application unit 251 applies the estimated partial chromatic dispersion value to the transmission signal after application that is output from the frequency offset application unit 243 (step S215). The partial chromatic dispersion application unit 251 outputs the transmission signal to which the partial chromatic dispersion value has been applied to the nonlinear operation unit 252.
[0092] The nonlinear calculation unit 252 performs nonlinear calculation based on the above formula (8) using the transmission signal after the partial chromatic dispersion value application output from the partial chromatic dispersion application unit 251 (step S216). The nonlinear calculation unit 252 outputs the transmission signal after the nonlinear calculation to the residual dispersion application unit 253. The residual dispersion application unit 253 calculates the nonlinearity of the transmission signal at the optical power measurement position zk The residual dispersion applying unit 253 estimates a value of chromatic dispersion corresponding to the distance from the optical power measurement position z0 to the optical receiving device 20. For example, the residual dispersion applying unit 253 estimates a residual chromatic dispersion value, which is a value of chromatic dispersion corresponding to the distance from the optical power measurement position z0 to the optical receiving device 20. The residual dispersion applying unit 253 applies the estimated residual chromatic dispersion value to the transmission signal after nonlinear operation output from the nonlinear operation unit 252 (step S217). The residual dispersion applying unit 253 outputs the transmission signal to which the residual chromatic dispersion value has been applied to the correlation calculating unit 254.
[0093] The correlation calculation unit 254 calculates the correlation between the received signal output from the coherent receiver 21 and the transmitted signal after the residual chromatic dispersion value has been applied and output from the residual dispersion application unit 253 (step S218). Thereafter, the correlation calculation unit 254 determines whether or not a termination condition is satisfied (step S219). The termination condition here is a condition for terminating the calculation of the correlation, and may be, for example, that the calculation of the correlation up to all optical power measurement positions has been completed.
[0094] If the correlation calculation unit 254 determines that the termination condition is not satisfied (step S219-NO), it adds 1 to k (step S220). Thereafter, the optical receiving device 20 repeatedly executes the processes from step S215 onwards. For example, if the value after the addition is k=1, the optical receiving device 20 estimates a chromatic dispersion value corresponding to the distance from the optical transmitting device to the optical power measurement position z1 in the process of step S215. The partial chromatic dispersion application unit 251 applies the estimated partial chromatic dispersion value to the applied transmission signal output from the frequency offset application unit 243.
[0095] Thereafter, the processes from steps S215 to S218 are executed with k=1. Then, the correlation calculation unit 254 determines again whether the termination condition is met (step S219). In this way, the processes from steps S215 to S218 are repeatedly executed until correlations are acquired at all optical power measurement positions.
[0096] In the process of step S219, when it is determined that the termination condition is satisfied (step S219-YES), the correlation calculation unit 254 performs optical power estimation using the correlation results acquired for each optical power measurement position (step S221). Specifically, the correlation calculation unit 254 plots the correlation results acquired for each optical power measurement position to calculate an estimated power distribution γ'(z k The correlation calculation unit 254 estimates the estimated power distribution γ′(z k ) is output to the digital filter application unit 27.
[0097] The digital filter application unit 27 applies the spatial response function g calculated by the spatial response function calculation unit 26 to the Re (z) and the estimated power distribution γ′(z k ) and the estimated power distribution γ´(z k ) is subjected to a digital filter to obtain an ideal output (step S222).
[0098] According to the optical receiving device 20 configured as above, it is possible to obtain the same effects as those of the first embodiment.
[0099] (Variation 1) The order of compensation by the demodulation / decoding unit 22 and the order of application by the pre-processing unit 24 and the optical power distribution estimating unit 25 are not limited to the above-mentioned order. Any order may be used for compensation by the demodulation / decoding unit 22. In the above-mentioned embodiment, the configuration in which the pre-processing unit 24 applies values corresponding to the polarization fluctuation, frequency offset, and carrier phase to the restored transmission signal has been shown, but it is sufficient that the values corresponding to the polarization fluctuation, frequency offset, and carrier phase are applied before processing by the correlation calculating unit 254.
[0100] (Variation 2) In the above-described embodiment, a process of taking an absolute value may be performed before performing correlation calculation, as in the first embodiment.
[0101] (Variation 3) The optical power distribution estimation device provided in the optical receiving device 20 may be provided in another device. FIG. 7 is a diagram showing an example of the configuration of an optical transmission system 100a in a modified example of the second embodiment. The optical transmission system 100a includes an optical transmitting device (not shown), an optical receiving device 20a, and a network controller 30a. The optical transmission system 100a may include a plurality of optical receiving devices 20a. The optical transmitting device (not shown) and the optical receiving device 20a are connected by an optical transmission path, and the optical receiving device 20a and the network controller 30a are connected by an electric line. The optical receiving device 20a receives a transmission signal transmitted from an optical transmitting device connected via the optical transmission path. The network controller 30a is a higher-level device that manages the optical transmission system 100a.
[0102] The optical receiving device 20a includes a coherent receiver 21 and a demodulation / decoding unit 22. The network controller 30a includes a transmission signal restoration unit 23, a pre-processing unit 24, an optical power distribution estimating unit 25, a spatial response function calculating unit 26, and a digital filter applying unit 27. The processes performed by the transmission signal restoration unit 23, the pre-processing unit 24, the optical power distribution estimating unit 25, the spatial response function calculating unit 26, and the digital filter applying unit 27 are basically the same as those performed by the functional units of the same names shown in Fig. 5. The differences will be explained below.
[0103] The coherent receiver 21 outputs the received signal to a demodulation / decoding unit 22, and also outputs the received signal via an electrical line to an optical power distribution estimation unit 25 provided in the network controller 30. The demodulation / decoding unit 22 outputs the decoded received signal via an electrical line to a transmission signal restoration unit 23 provided in the network controller 30.
[0104] Each functional unit included in the network controller 30 performs the same processing as the functional unit with the same name shown in the second embodiment.
[0105] According to the optical transmission system 100a configured as above, it is possible to obtain the same effects as those of the second modification of the first embodiment.
[0106] (Third embodiment) In the third embodiment, a configuration for estimating an optical power distribution using the least squares method will be described. The optical power distribution γ′(z k ) is expressed as the following equation (9): F in equation (9) represents the Fourier transform.
[0107]
number
[0108] Here, Δz represents the estimated spatial granularity. As in the first and second embodiments, the optical power distribution estimated using the least squares method is calculated by adding a spatial response function g to the true optical power distribution γ'(z), which is proportional to the true optical power distribution. Re Therefore, the spatial response function g Re If (z) is known in advance, it becomes possible to reconstruct the true optical power distribution γ'(z). Below, based on the results of the above considerations, a specific configuration for obtaining the true optical power distribution γ'(z) will be described.
[0109] 8 is a diagram illustrating an example of the configuration of an optical receiving device 40 according to the third embodiment. The optical receiving device 40 uses the least squares method as an estimation algorithm for estimating optical power distribution. The optical receiving device 40 is connected to an optical transmitting device provided in an optical transmission system via an optical transmission path. The optical receiving device 40 receives a transmission signal transmitted from the optical transmitting device via the optical transmission path. The optical receiving device 40 includes a coherent receiver 41, a demodulation / decoding unit 42, a transmission signal restoration unit 43, a pre-processing unit 44, an optical power distribution estimation unit 45, a spatial response function calculation unit 46, and a digital filter application unit 47. The transmission signal restoration unit 43, the pre-processing unit 44, the optical power distribution estimation unit 45, the spatial response function calculation unit 46, and the digital filter application unit 47 are configured as an optical power distribution estimation device.
[0110] The coherent receiver 41, demodulation / decoding unit 42, transmission signal restoration unit 43, and pre-processing unit 44 perform the same processing as the functional units with the same names shown in the first and second embodiments described above, and therefore their explanations are omitted.
[0111] The optical power distribution estimation unit 45 estimates the optical power distribution (optical transmission characteristics) γ'(z k ) is estimated. The method of estimating the optical power distribution (optical transmission characteristics) of an optical transmission line using an estimation algorithm based on the least squares method is an existing method, and therefore a description thereof will be omitted. For example, the method of estimating the optical power distribution (optical transmission characteristics) of an optical transmission line using an estimation algorithm based on the least squares method may be the method disclosed in Non-Patent Document 2 or Reference Document 1. (Reference 1: Takeo Sasai, Etsushi Yamazaki, Masanori Nakamura, and Yoshiaki Kisaka, “Proposal of Linear Least Squares for Fiber-Nonlinearity-Based Longitudinal Power Monitoring in Multi-Span Link”, OECC / PSC 2022)
[0112] The spatial response function calculation unit 46 calculates the spatial response function g based on the above equation (2) using the transmission signal restored by the transmission signal restoration unit 43. Re Calculate (z).
[0113] The digital filter application unit 47 applies the spatial response function g calculated by the spatial response function calculation unit 46 to the Re (z) is used to create a digital filter g -1 Re The digital filter application unit 47 designs the estimated power distribution γ′(z k ) with the digital filter g -1 Re The ideal output is obtained by convolving (z).
[0114] 9 is a diagram illustrating an example of the configuration of the digital filter application unit 47 according to the third embodiment. The digital filter application unit 47 includes Fourier transform units 471 and 472, a multiplication unit 473, an up-sampling unit 474, and a 1 / F[g Re (z m ) multiplication unit 475 and an inverse Fourier transform unit 476.
[0115] The Fourier transform unit 471 converts the estimated power distribution γ′(z k ) is input. The Fourier transform unit 471 converts the input estimated power distribution γ′(z k ) is Fourier transformed. Hereafter, the estimated power distribution γ´(z k ) to F[~γ´(z k )] should be written.
[0116] The Fourier transform unit 472 converts the spatial response function g calculated by the spatial response function calculation unit 46 into Re (z) is input. The Fourier transform unit 472 converts the input spatial response function g Re (z) is Fourier transformed. Hereafter, the spatial response function g after Fourier transformation is Re (z) into F[g Re (z)] is written.
[0117] The multiplication unit 473 multiplies the result of the Fourier transform F[~γ´(z k )] and the Fourier transform result F[g Re (z)]. The result obtained by multiplication unit 473 is expressed as in the following equation (10).
[0118]
number
[0119] The upsampling unit 474 upsamples the result obtained by the multiplication unit 473 .
[0120] 1 / F[g Re (zm )] multiplication unit 475 multiplies the value after upsampling by upsampling unit 474 by 1 / F[g Re (z m )] where z m (m=0,1…,M) is the optical power measurement position z k It represents a finer granularity than 1 / F[g Re (z m )] multiplication unit 475 multiplies the value after upsampling by upsampling unit 474 by the optical power measurement position z k The spatial response function at a position with finer granularity than the above is multiplied by the inverse of the Fourier transform value.
[0121] The inverse Fourier transform unit 476 calculates 1 / F[g Re (z m )] performs an inverse Fourier transform on the multiplication result by the multiplication unit 475. As a result, the digital filter application unit 47 obtains an ideal output.
[0122] According to the optical receiving device 40 configured as above, even in a configuration that uses the least squares method as the optical power distribution estimation technique, it is possible to obtain the same effects as in the first embodiment.
[0123] (Variation 1) The order in which the demodulation / decoding unit 42 performs compensation is not limited to the above-mentioned order, and the order in which the demodulation / decoding unit 42 performs compensation may be any order.
[0124] (Variation 2) The optical power distribution estimation device provided in the optical receiving device 40 may be provided in another device. The other device is, for example, a network controller that manages the optical transmission system. In this configuration, the optical receiving device 40 includes a coherent receiver 41 and a demodulation / decoding unit 42. The network controller includes a transmission signal restoration unit 43, a pre-processing unit 44, an optical power distribution estimation unit 45, a spatial response function calculation unit 46, and a digital filter application unit 47. The processes performed by the transmission signal restoration unit 43, the pre-processing unit 44, the optical power distribution estimation unit 45, the spatial response function calculation unit 46, and the digital filter application unit 47 are basically the same as those performed by the functional units of the same names shown in FIG. 8. The differences will be described below.
[0125] The coherent receiver 41 outputs the received signal to a demodulation / decoding unit 42 and also outputs the received signal to an optical power distribution estimation unit 45 provided in the network controller via an electrical line. The demodulation / decoding unit 42 outputs the decoded received signal to a transmission signal restoration unit 43 provided in the network controller via an electrical line.
[0126] Each functional unit included in the network controller 30 performs the same processing as the functional unit with the same name shown in the third embodiment.
[0127] Some or all of the functional units of the optical receiving devices 10, 10a, 20, 20a, and 40 and the network controllers 30 and 30a described above are realized as software by a processor such as a CPU (Central Processing Unit) executing a program stored in a storage device having a nonvolatile storage medium (non-transitory storage medium) and a storage unit. The program may be recorded on a computer-readable non-transitory storage medium. Examples of computer-readable non-transitory storage media include portable media such as flexible disks, magneto-optical disks, ROMs (Read Only Memory), and CD-ROMs (Compact Disc Read Only Memory), and storage devices such as hard disks built into computer systems.
[0128] Some or all of the functional units of the above-mentioned optical receiving devices 10, 10a, 20, 20a, 40 and network controllers 30, 30a may be realized using hardware including electronic circuits (electronic circuits or circuitry) using, for example, an LSI (Large Scale Integrated circuit), an ASIC (Application Specific Integrated Circuit), a PLD (Programmable Logic Device), or an FPGA (Field Programmable Gate Array).
[0129] Although an embodiment of the present invention has been described in detail above with reference to the drawings, the specific configuration is not limited to this embodiment, and includes designs within the scope of the gist of the present invention. [Industrial Applicability]
[0130] The present invention can be applied to a technique for estimating transmission characteristics in a digital coherent optical transmission system. [Explanation of symbols]
[0131] 10, 10a, 20, 20a, 40...optical receiving device, 11, 21, 41...coherent receiver, 12, 22, 42...demodulation and decoding unit, 13, 23, 43...transmission signal restoration unit, 14...chromatic dispersion application unit, 15, 164...absolute value calculation unit, 16, 25, 45...optical power distribution estimation unit, 17, 26, 46...spatial response function calculation unit, 18, 27, 47...digital filter application unit, 24, 44...preprocessing unit, 30, 30a...network controller, 121, 221...chromatic dispersion compensation unit, 122, 222...polarization fluctuation compensation unit, 123, 223...frequency offset compensation unit, 124, 224...carrier phase compensation unit, 125, 225...symbol decision unit, 126, 226...decoding unit 131, 231... mapping unit, 132, 232... Nyquist filter, 161... partial chromatic dispersion compensation unit, 162, 252... nonlinear calculation unit, 163... residual dispersion compensation unit, 241... polarization fluctuation application unit, 242... carrier phase application unit, 243... frequency offset application unit, 251... partial chromatic dispersion application unit, 253... residual dispersion application unit, 165, 254... correlation calculation unit, 471, 472... Fourier transform unit, 473... multiplication unit, 474... upsampling unit, 475... 1 / F[g Re (z m )] multiplication section, 476...inverse Fourier transform section
Claims
1. an optical power distribution estimating unit that estimates an optical power distribution based on a received signal that is based on an optical signal transmitted from an optical transmitting device and received via an optical transmission line, and a transmitted signal that is restored based on the received signal; a spatial response function calculation unit that calculates a spatial response function based on the transmission signal and a dispersion value of the optical transmission line; a digital filter applying unit that applies a digital filter based on the spatial response function to the optical power distribution to obtain an ideal output; An optical power distribution estimation device comprising:
2. 2. The optical power distribution estimation device according to claim 1, wherein the digital filter application unit designs a digital filter using the spatial response function calculated by the spatial response function calculation unit, and obtains the ideal output by convolving the designed digital filter with the optical power distribution.
3. 3. The optical power distribution estimation device according to claim 1, wherein the optical power distribution estimation unit estimates the optical power distribution using a method based on a correlation method as an estimation algorithm for the optical power distribution.
4. The optical power distribution estimation unit a partial chromatic dispersion applying unit that applies partial chromatic dispersion corresponding to a distance from the optical transmitter to an optical power measurement position to the signal; a nonlinear calculation unit that performs a nonlinear calculation on the signal to which the partial chromatic dispersion has been applied, using a first-order term obtained by Taylor expansion of a mathematical expression used for phase rotation; a residual dispersion application unit that applies residual chromatic dispersion corresponding to the distance from the optical power measurement position to an optical receiving device to the signal after nonlinear operation by the nonlinear operation unit; a correlation calculation unit that estimates an optical power distribution in the optical transmission line by calculating a correlation between the signal to which the residual chromatic dispersion has been applied and a received signal based on an optical signal transmitted from the optical transmitting device and received via the optical transmission line for each optical power measurement position; and The optical power distribution estimation device according to claim 3 , comprising:
5. 3. The optical power distribution estimation device according to claim 1, wherein the optical power distribution estimation unit estimates the optical power distribution using a method based on a least squares method as an estimation algorithm for the optical power distribution.
6. an optical power distribution is estimated based on a received signal based on an optical signal transmitted from an optical transmitting device and received via an optical transmission line, and a transmitted signal restored based on the received signal; calculating a spatial response function based on the transmission signal and a dispersion value of the optical transmission line; An optical power distribution estimation method for obtaining an ideal output by applying a digital filter based on the spatial response function to the optical power distribution.
7. On the computer, an optical power distribution estimating step of estimating an optical power distribution based on a received signal based on an optical signal transmitted from an optical transmitting device and received via an optical transmission line, and a transmitted signal restored based on the received signal; a spatial response function calculation step of calculating a spatial response function based on the transmission signal and a dispersion value of the optical transmission line; a digital filter applying step of applying a digital filter based on the spatial response function to the optical power distribution to obtain an ideal output; A computer program for executing