The present description generally relates to the determination of a linear and nonlinear noise parameter characterizing an optical communication link, and more particularly to the determination of the Generalized Optical Signal to Noise Ratio (GOSNR).
Network operators increasingly adopt practices of network function disaggregation, including sourcing the terminal equipment (transceivers) and the optical transmission link (including amplifiers and ROADMs) from different vendors. It has thus become increasingly important to characterize the optical link performance. Increased use of coherent receivers operating without optical dispersion compensation has led to the definition of the concept of a Generalized Optical Signal to Noise Ratio (GOSNR) which combines in a single metric (i.e., the GOSNR), both the traditional OSNRASE due to ASE noise from optical amplifiers, and the “nonlinear” OSNRNL due to nonlinear distortions. The GOSNR quantifies the linear and nonlinear noise accrued by a signal while passing through an optical link consisting of fiber spans and amplifiers. The GOSNR metric is particularly useful in disaggregated systems, where it is desirable to quantify the optical link performance independently of the terminal equipment.
There exist known methods in art for deriving the GOSNR using a pair of coherent transmitter and receiver (see P. Pecci et al., “Experimental Characterization of Submarine “Open Cable” using Gaussian-noise Model and OSNRWET Parameter,” Proc. OFC 2017, M2E.4). In the method described in Pecci, the coherent transmitter/receiver pair is first characterized in a back-to-back (B2B) measurement, i.e., when the transmitter and receiver are directly connected to one another without optical fiber link impairments. In the back-to-back measurement, a signal quality metric QTRx of the transmitter/receiver pair is measured as a function of the OSNR. This signal quality metric is referred to as QTRx-B2B and can be either the Q-factor (obtained from a BER measurement at the receiver) or the signal-to-noise ratio (SNR) (electronically obtained directly from the receiver). Second, an end-to-end measurement is conducted with the optical transmission link connected. In the end-to-end measurement, the signal quality metric QTRx is measured, as well as the corresponding OSNR. This signal quality metric is referred to as QTRx-E2E. As shown in
Such GOSNR measurement methods have a dependence on performance metrics of the transceiver optics, electronics and digital signal processing. For repeatable and reproducible measurements, the procedure requires “golden” transceivers (as opposed to “commercial-grade” transceivers) for both back-to-back and the end-to-end measurements, i.e., transceivers having intrinsic Q that is one or two orders of magnitude higher than measured Q. Relying on rare and expensive golden transceivers is not very practical.
There is therefore a need for a transceiver-independent GOSNR measurement method that can use commercial-grade transceivers to perform the measurement.
There is herein provided a method for measuring the GOSNR that can be implemented using commercial-grade transceivers and which accounts for linear optical impairments (e.g. PMD, PDL and CD) and transceiver intrinsic impairments. The method may be implemented using an Optical Spectrum Analyzer (OSA) and either the system transceivers or other commercial-grade transceivers. The proposed measurement method is based on mixed optical and electronic technologies, using an OSA and a transceiver pair. By measuring a signal quality metric Qm and the OSNR under varied power and ASE noise conditions, a constant value RBW that relates the GOSNR to the signal quality metric Qm is derived. The GOSNR is then obtained from these results.
In accordance with one embodiment, there is provided a method for measuring at least one of the generalized signal quality metric GQm, the GOSNR characterizing linear and nonlinear noise over an optical communication link under test and the OSNRNL characterizing the nonlinear noise over the optical communication link under test. The method comprising:
In some embodiments, the constant value RBW is predetermined from a prior back-to-back calibration measurement.
In some other embodiments, the method further comprises:
In accordance with another embodiment, there is provided a system for measuring at least one of the generalized signal quality metric (GQm), the Generalized Optical Signal to Noise Ratio (GOSNR) characterizing linear and nonlinear noise over an optical communication link under test and the nonlinear Optical Signal to Noise Ratio (OSNRNL) characterizing the nonlinear noise over the optical communication link under test, the optical communication link under test having a transmitter end connected toward a transmitter and a receiver end connected toward a receiver. The system comprises:
In accordance with another embodiment, there is provided a non-transitory computer-readable storage medium comprising instructions that, when executed, cause a processor to perform the steps of:
In accordance with another embodiment, there is provided a computer program comprising instructions that, when executed by a processor, cause the processor to perform the steps of:
In this specification, unless otherwise mentioned, word modifiers such as “substantially” and “about” which modify a value, condition, relationship or characteristic of a feature or features of an embodiment, should be understood to mean that the value, condition, relationship or characteristic is defined to within tolerances that are acceptable for proper operation of this embodiment in the context its intended application.
Further features and advantages of the present invention will become apparent to those of ordinary skill in the art upon reading of the following description, taken in conjunction with the appended drawings.
In the following description, similar features in the drawings have been given similar reference numerals and, to not unduly encumber the figures, some elements may not be indicated in some figures if they were already identified in a preceding figure. It should be understood herein that the elements of the drawings are not necessarily depicted to scale, since emphasis is placed upon clearly illustrating the elements and structures of the present embodiments.
The following description is provided to gain a comprehensive understanding of the methods, apparatus and/or systems described herein. Various changes, modifications, and equivalents of the methods, apparatuses and/or systems described herein will suggest themselves to those of ordinary skill in the art. Description of well-known functions and structures may be omitted to enhance clarity and conciseness.
Although some features may be described with respect to individual exemplary embodiments, aspects need not be limited thereto such that features from one or more exemplary embodiments may be combinable with other features from one or more exemplary embodiments.
There is herein provided a GQm, GOSNR and/or OSNRNL measurement method that can be implemented using commercial-grade transceivers and which account for linear optical impairments (e.g. PMD, PDL and CD) and transceiver intrinsic impairments. The method may be implemented mainly using an Optical Spectrum Analyzer (OSA) and either the system transceivers or other commercial-grade transceivers.
General Description of the Method:
The proposed measurement method is based on mixed optical and electronic technologies, mainly using an OSA and a transceiver pair for measuring the OSNRNL and the OSNRASE. Then, the GOSNR may be obtained from
1/GOSNR=1/OSNRASE+1/OSNRNL.
It will be understood that, as known in the art, each transmitter 204 and receiver 206 may be implemented as transceivers. The transmitter and receiver ends are defined only with reference to the direction of the signal of interest propagating in the optical communication link 202, which does not exclude compatibility with bidirectional communication over the optical communication link 202.
The test system 200 comprises a variable optical attenuator VOA1204 on the transmitter end to vary a power level of the transmitted signal. On the receiver end, the test system 200 further comprises a 2×2 coupler 210, an ASE source 212, a variable optical attenuator VOA2214 and an optical spectrum analyzer OSA 216. The 2×2 coupler 210 is connected in-line with the optical transmission link 202 to allow transmission therethrough. The ASE source 216 is connected to the 2×2 coupler 210 to inject ASE noise of variable power level toward the receiver end. The VOA2214 is optional but may be used to vary a level of the injected ASE noise. The OSA 216 is also connected to the 2×2 coupler 210 to receive forwardly propagating light at the receiver end of the optical transmission link 202 to analyze an optical spectrum thereof.
In some embodiments, the transmitter 204 and receiver 206 used in the GOSNR measurement may consist of those of the transmission system intended for the optical transmission link under test. Such embodiments may be useful in system commissioning applications. In other embodiments, the transmitter 204 and receiver 206 may be any other transmitter/receiver pair (e.g. devices intended for testing and not necessarily destined to be used in the link under test). Such embodiments may be useful for use in open link testing applications. Such method may be implemented using a receiver 204 including a signal quality metric Qm measurement functionality, Qm representing either the electronic Q-factor or the electronic SNR.
The proposed method can be summarized as follows:
R
Bw
=GQ/GOSNR=Q
ASE
/OSNR
ASE
=Q
NL
/OSNR
NL
OSNRNL=QNL/RBw
GOSNR−1=OSNRASE−1+OSNRNL−1
Mathematical expressions:
As mentioned hereinabove, the signal quality metric Qm may represent either the electronic Q-factor or the electronic SNR. In either case, the total Qm measured for a signal propagating over an optical communication link (end-to-end (E2E) measurement) is referred to herein as Qm-tot and can be decomposed as follows:
1/Qm-tot=1/QASE+1/QNL+1/QTRx-intrinsic+1/QRx-link (1)
where QASE represents a contribution in the measured Qm (Q contribution) resulting from the cumulated ASE in transmission over the optical transmission link; QNL is a Q contribution resulting from non-linear noise built in transmission over the optical transmission link; QTRx-Intrinsic represents a Q contribution due to intrinsic transceiver impairments and electronic noise; and QRx-Link represents a Q contribution resulting from other residual linear link transmission impairments, such as CD, PDL and PMD, after digital signal processing compensation at the receiver. All Q metrics are in linear units.
QTRx-intrinsic is composed of two terms, i.e. QTRx-Ps that is linearly proportional to the signal power Ps and QTRx-C that is a constant term, independent to the signal power Ps, such that:
1/QTRx-intrinsic=1/QTRx-Ps+1/QTRx-C (2)
Considering QRx-link is independent to Ps, equation (1) can be rewritten as
1/Qm-tot=1/GQm+1/QTRx-Ps+1/Qm-c
1/Qm-tot=1/[RBW(1/GOSNR)]+1/QTRx-Ps+1/Qm-C (3)
where
1/Qm-C=1/QRx-link+1/QTRx-C (4)
And wherein the generalized Q metric, GQm is defined as
1/GQm=1/QASE+1/QNL (5)
The generalized optical signal to noise ratio (GOSNR) is defined as
1/GOSNR=1/OSNRASE+1/OSNRNL (6)
And the ratio between equivalent noise bandwidths for Qm and OSNR is:
R
BW
=GQ
m
/GOSNR=Q
ASE
/OSNR
ASE
=Q
NL
/OSNR
NL (7)
Detailed Description of the Method:
Referring to
Step 1—Record signal quality metric Qm, signal power Ps and OSNR at operation conditions:
The total transmitted power PTx and the power distribution between WDM channels are set to conditions for which the GQm, the GOSNR and/or the OSNRNL measurement is to be obtained, e.g., typical link operation conditions. More specifically, the total transmitted power PTx is set to a first value PTx=PTx-1. The set power level PTx-1 may be generated using the transmitter module 204 in combination with VOA1208. The ASE source 212 is turned off.
Under this condition 1, values of total signal quality metric, Qm-tot-1 are measured and recorded for each WDM signal of interest. Values of signal quality metric Qm may be measured using the integrated signal quality metric measurement functionality of the receiver module 206.
The ASE OSNR, referred to as OSNRASE-1 and signal power, referred to as Ps-1 are also measured for each WDM signal of interest. Both these metrics may be measured using the OSA. The ASE OSNR may be measured using any method known in the art suitable for the optical signal being transmitted and received. For example, the conventional ASE interpolation method or the conventional signal turn-off method may be used. Or, for polarized signals, the conventional polarization-nulling method or other polarization-based methods (see, e.g., U.S. Pat. No. 8,787,753B2 to Gariepy et al. or U.S. Pat. No. 8,364,034B2 to He et al.) may be used. Or, for polarization-multiplexed signal, a reference-based method (see, e.g., U.S. Pat. No. 9,112,604B2 to Gariepy et al., which is hereby incorporated by reference) may be used.
From equation (3) and (7), we can define:
1/Qm-tot-i =1/(RBw OSNRASE-1) +1/QNL-1 +1/QTRx-Ps-1+1/Qm-c (8)
Step 2—Record signal quality metric Qm and OSNR with added ASE:
The total transmitted power PTx and the power distribution between WDM channels remains unchanged (PTx=PTx-1) compared to step 1, i.e., they are set to conditions for which the measurement is to be obtained, e.g., typical network operation conditions. The ASE source 212 is turned on to add ASE to the received signal. Optionally, the desired level of ASE may be set using VOA2214.
Under this added ASE condition (“-add”), values of total signal quality metric, Qm-tot-add, are measured for each WDM signal of interest using the receiver module 206, and measured values are recorded. Values of signal power, Ps-1, remains the same (i.e., Ps-add=Ps-1).
The ASE OSNR, referred to as OSNRASE-add is also measured for each WDM signal of interest using the OSA 216 and any method known in the art.
Because the signal power is the same as in condition 1 (Ps-add=Ps-1), non-linear effects and the corresponding Q contribution Qm-NL resulting from non-linear noise is also the same (Qm-NL-add=Qm-NL-1, and QTRx-Ps-2=QTRx-Ps-1).
Then, from equation (3) and (7), we can define:
1/Qm-tot-add=1/(RBWOSNRASE-add)+1/QNL-1+1/QTRx-Ps-1+1/Qm-C (9)
Step 3—Record signal quality metric Qm, signal power and OSNRASE with varied signal power:
The ASE source is turned off. The total transmitted power PTx is varied using VOA1208 to set it to a second value (PTx=PTx-2) and a third value (PTx=PTx-3) that are different from the first value of step 1 (PTx-1≠PTx-2≠PTx-3). The power distribution between WDM channels may remain unchanged. For example, values of varied total transmitted power PTx-2 and PTx-3 may be selected to be within about ±1 dB from PTx-1, i.e., PTx-2=PTx-1+1 dB and PTx-2=PTx-1−1 dB. Other values are also possible.
Under each of these conditions (2 and 3), values of total signal quality metric, Qm-tot-2 and Qm-tot-3, are measured and recorded for each WDM signal of interest using the receiver module Rx. Signal power Ps-2 and Ps-3, as well as OSNRASE-2 and OSNRASE-3, can be measured and recorded using the OSA.
Again, from equation (3) and (7), we can define:
1/Qm-tot-2=1/(RBW OSNRASE-2)+1/QNL-2+1/QTRx-Ps-2+1/Qm-C (11a)
1/Qm-tot-3=1/(RBW OSNRASE-3)+1/QNL-3+1/QTRx-Ps-3+1/Qm-C (11b)
Step 4—Derive constant value RBW:
From values recorded in steps 1 and 2, the constant value RBW that relates the OSNR to the signal quality metric Qm can be derived as follows.
Referring to equation (7), the constant value RBW is defined as:
RBW=GQ/GOSNR=QASE/OSNRASE=QNL/OSNRNL (7)
By subtracting equation (8) from equations (9), we find:
RBW=(1/OSNRASE-add−1/OSNRASE-1)/(1/Qm-tot-add−1/Qm-tot-1) (10)
Step 5—Discriminate nonlinear contribution QNL to signal quality metric Qm:
From the Gaussian noise model for uncompensated optical fibers (see P. Pecci et al., “Experimental Characterization of Submarine “Open Cable” using Gaussian-noise Model and OSNRWET Parameter,” Proc. OFC 2017, M2E.4), we know that non-linear effect impairments generally increase proportionally to the square signal power and thus:
Q
NL-1
/Q
NL-2=(PS2/Ps1)2 (12a)
Q
NL-1
/Q
NL-3=(Ps3/Ps1)2 (12b)
Knowing that QTRx-Ps represents the term of QTRx-intrinsic that is linearly proportion linearly proportional to the signal power Ps, we find:
QTRx-Ps2/QTRx-Ps1=PS2/PS1 (13a)
QTRx-Ps3/QTRx-Ps1=Ps3/Ps1 (13b)
Now, from values recorded in steps 1 and 3 and by combining equations (8), (11a), (11b), (12a), (12b), (13a) and (13b), values of QNL-1, QNL-2 and QNL-3 are derived.
By putting equations of 12a, 12b, 13a and 13b into equations of 8, 11a and 11 b, it has
1/QNL-1=1/Qm-tot-1−1/(RRBWOSNRASE-1)−1/QTRx-Ps1−1/QTRx-C (14a)
(Ps2/Ps1)2/QNL-1=1/Qm-tot-2−1/(RRBWOSNRASE-2)−(Ps1/Ps2)/QTRx-Ps1−1/QTRx-C (14b)
(Ps3/Ps1)2/QNL-1=1/Qm-tot-3−1/(RRBWOSNRASE-3)−(Ps1/Ps3)/QTRx-Ps1−1/QTRx-C (14c)
For example, QNL-1 can be found as:
Q
NL-1
=Cp/{[(Ps1/Ps3)−1] [Δ2-1(1/Qm-tot)−Δ2-1(1/RBWOSNRAES)]−[(Ps1/Ps2)−1] [Δ3- 1(1/Qm-tot−Δ3-1(1/RBWOSNRAES)]}
wherein
Cp=[(Ps1/Ps3)−1] [(Ps2/Ps1)2−1]−[(Ps1/Ps2)−1] [(Ps3/Ps1)2−1]
Δ2-1(1/Qm-tot)=1/Qm-tot-2−1/Qm-tot-1
Δ3-1(1/Qm-tot)=1/Qm-tot-3−1/Qm-tot-1
Δ2-1(1/RBWOSNRASE)=1/RBWOSNRASE-2−1/RBWOSNRASE-1
Δ3-1(1/RBWOSNRASE)=1/RBWOSNRASE-3−1/RBWOSNRASE-1
and QNL-2 and QNL-3 then be found from equation (12a) and (12b).
It is noted that, in fact, from 7 independent equations, it is possible to derive all 7 unknown parameters of QNL-1, QNL-2, QNL-3, QTRx-Ps-1, QTRx-Ps-2, QTRx-Ps-3 and Qm-C.
Step 6—Derive GQm, GOSNR and/or OSNRNL-1:
From the constant value RBW derived in step 4 and the nonlinear contribution QNL-1 derived in step 5, the non-linear OSNR may be found from equation (7):
OSNRNL-1=QNL-1/RBW (14.1)
and the GOSNR corresponding to signal conditions 1 may be derived from equation (6):
GOSNR
1
−1
=OSNR
ASE-1
−1
+OSNR
NL-1
−1
Or, the GOSNR corresponding to signal conditions 1 may be derived more directly from the constant value RBW derived in step 4 and the nonlinear contribution QNL-1 derived in step 5, by combining equations (6) and (7):
1/GOSNR1=1/OSNRASE-1+RBW/QNL-1 (14.2)
1/GQm-1=1/(RBW OSNRASE-1)+1/QNL-1 (14.3)
If needed for the specific application, the GOSNR or the generalized Q metric GQm corresponding to signal conditions 2 and/or 3 may also be derived similarly:
1/GOSNR2=1/OSNRASE-2+RBW/QNL-2 (15.1)
1/GQm-2=1/(RBW OSNRASE-2)+1/QNL-2 (15.2)
1/GOSNR3=1/OSNRASE-3+RBW/QNL-3 (15.3)
1/GQm-3=1/(RBW OSNRASE-3)+1/QNL-3 (15.4)
And so is the OSNRNL:
OSNR
NL-2
=Q
NL-2
/R
BW (15.5)
OSNR
NL-3
=Q
NL-3
/R
BW (15.6)
More specifically, if the Q metric is defined as the electronic Signal to Noise Ratio (SNR), the Generalized electronic Signal to Noise Ratio (GSNR) corresponding to signal conditions 2 and/or 3 may also be derived:
1/GSNR1=1/(SNRASE-1)+1/SNRNL-1 (15.7)
1/GSNR2=1/(SNRASE-2)+1/SNRNL-2 (15.8)
1/GSNR3=1/(SNRASE-3)+1/SNRNL-3 (15.9)
where
SNRASE-1=RBW OSNRASE-1 (15.10)
SNRASE-2=RBW OSNRASE-2 (15.11)
SNRASE-3=RBW OSNRASE-3 (15.12)
Derived value(s) of OSNRNL (OSNRNL-1, OSNRNL-2, and/or OSNRNL-3) and/or GOSNR (GOSNR1, GOSNR2 and/or GOSNR3) and/or GSNR (GSNR1, GSNR2, GSNR3) may then be output or made available in memory for later use.
It is noted that if the GOSNR is to be determined only for condition 1, i.e. signal power Ps=Ps1, then OSNRASE-2 and OSNRASE-2 do not need to be measured in step 3 and measuring the OSNRASE for condition 1 is sufficient. In that case, in step 5, values of QNL-1, QNL-2 and QNL-3 may be derived from values recorded in steps 1 and 3, including signal power measurements Ps2 and Ps3, and the assumption that:
NASE-1=NASE-2=NASE-3
and therefore:
Ps2/Ps1≈OSNRASE-2/OSNRASE-1
Ps3/Ps1≈OSNRASE-3/OSNRASE-1
Such assumption may be used to reduce the number of measurements in step 3 because, in reality, only the signal power ratios are needed, which can be found either from the signal power ratio itself or the OSNRASE ratios. More specifically, instead of measuring both the signal power and the OSNRASE in step 3, either one or the other may be measured.
It is further noted that values of QTRx-Ps and Qm-C which may optionally be derived in step 5, may be of interest in advanced characterization of overall transmission system. Therefore, in some embodiments, these values may further be output or made available in memory for later use.
As an alternative approach, for the case of using test transponders, the RBW of test transponders can be pre-calibrated in factory. In this case, only steps 1, 3, 5, 6 are required to be performed in the field in order to measure the GOSNR. The pre-calibration of RBW can be done by performing step 1, 2 and 4 (using equation 10), as mentioned before, through a back-to-back measurement of a calibration set-up, i.e., without an optical transmission link 202, shown in
There is further provided method that can be implemented using commercial-grade transceivers and an Optical Spectrum Analyzer (OSA), and which is intrinsically independent to linear optical impairments (e.g., PMD, PDL and CD) and transceiver impairments. This method may advantageously be used for in-service monitoring applications after system turn-up.
General Description of Method:
The proposed measurement method is based on OSA acquisitions for measuring the OSNRNL and the OSNRASE. Then, the GOSNR may be obtained from
1/GOSNR=1/OSNRASE+1/OSNRNL.
It is based on a differential spectrum analysis between multiple optical spectrum traces acquired by an OSA at the receiver end of the optical transmission link, by varying the signal power in a controlled manner.
It was observed that, when increasing the signal power, stronger nonlinear effects result in greater signal spectral deformations.
It was found that the nonlinear OSNR, referred to as OSNRNL, can be estimated from the signal spectrum deformation. From the signal deformation optical spectrum difference (ΔSSD, the OSNRNL may be determined by use of relations between ΔSSD, NNL and total signal power Ps. The ASE OSNR, referred to as OSNRASE, may be measured using the OSA by employing any method known in the art, such as the conventional ASE interpolation method, the conventional signal turn-off method, or a reference-based method for example.
Then, the GOSNR may be derived using equation (6):
1/GOSNR=1/OSNRASE+1/OSNRNL (6)
The test system 500 comprises a variable optical attenuator (VOA1) 508 on the transmitter end to vary and control a power level of the transmitted signal. On the receiver end, the test system 500 further comprises a tap coupler 510 and an optical spectrum analyzer OSA 516. The OSA 516 is connected to the tap coupler 516 to receive forwardly propagating light at the receiver end of the optical transmission link 502 to analyze an optical spectrum thereof.
In some embodiments, the transmitter 504 and receiver 506 used in the GOSNR measurement may consist of those of the transmission system intended for the optical transmission link under test. Such embodiments may be useful in system commissioning applications. In other embodiments, the transmitter 504 and receiver 506 may be any other transmitter/receiver pair (e.g. devices intended for testing and not necessarily destined to be used in the link under test). Such embodiments may be useful for use in open link testing applications.
At least three optical spectral traces are measured by the OSA 516 with varied signal power level.
Theory:
The signal deformation equivalent noise NSD can be obtained by integrating the non-spectrally uniform deformation noise ΔSSD(λ) over a given spectral bandwidth NBW (in nm) and normalizing it to 0.1 nm:
The spectral bandwidth NBW may correspond to the whole signal bandwidth or be determined by the relative power distribution of the signal peak, e.g. from −10 dB to −3 dB (as shown in
The signal deformation optical signal to noise ratio OSNRSD can be derived as the relation between the total signal power PTOT, individual channel signal power PCh and the spectral bandwidth NSD:
The GOSNR is obtained by performing a typical commissioning characterization procedure, where it is possible to turn off transceivers for measuring the received OSNRASE and to vary the launched power level in a controlled manner. The measurement can be done entirely in the optical domain with a commercial OSA.
For the general case where multiple optical spectrum traces are acquired by varying the signal power (for the general case where the nonlinear noise negligible in neither traces), we define a relative OSNRNL as:
wherein OSNRNL1 and OSNRNL2 are nonlinear OSNR corresponding to two different optical spectrum traces obtained by varying the signal power and wherein OSNRSD corresponds to the signal deformation between the two optical spectrum traces.
Based on previous observations that the OSNRNL is related to OSNRSD (see D. Gariepy, S. Searcy, G. He, S. Tibuleac, M. Leclerc, and P. Gosselin-Badaroudine, “Novel OSNR Measurement Techniques Based on Optical Spectrum Analysis and Their Application to Coherent-Detection Systems,” J. Lightwave Technol. 37, 562-570 (2019)), we postulate that:
wherein F and n are arbitrary factors selected to provide a digital model of the relationship between OSNRNL and OSNRSD. F represents a noise shape factor selected for taking into account the impact of the power range choice for the integration region NBW on a spectrally non-uniform distribution of NSD(λ). Exponent n is intended to allow adjustment of the relation for different nonlinear conditions associated with different system configurations (e.g. fiber types, chromatic dispersion and span lengths). A value of n can be obtained through relative optical spectrum measurements at commissioning. Since it acts as a normalization factor that should depend only on the above definition of OSNRSD, the noise shape factor F is expected to be independent of the system configuration and can be retrieved from an initial calibration procedure on any system with known GOSNR conditions.
When the nonlinear noise is negligible in the reference spectral trace (condition 1), we obtain:
Once F and n are determined, the GOSNR can be obtained as:
1/GOSNR=1/OSNRASE+[F·1/OSNRSD]n
Detailed Description of the Method:
Since it acts as a normalization factor that should depend only on the above definition of OSNRSD, the noise shape factor F is expected to be independent of the system configuration and can be derived from an initial calibration procedure performed with any system with known GOSNR conditions.
The procedure for determining the exponent n is described as follows:
Step 1:
Using the Variable Optical Attenuator (VOA) 508, a reference lower transmitter total signal power and power distribution (between channels) are set to level PTx-ref.
Under this condition (“-ref”), the corresponding optical spectrum trace is acquired by the OSA 516 at receiver end to obtain:
P
sum-ref(λ)=Ps-ref (λ)+NASE-ref (20)
Using the optical spectrum measurement, the ASE OSNR and/or the ASE noise level NASE-ref may be determined by employing any method known in the art, such as the conventional ASE interpolation method, the conventional signal turn-off method, or a reference-based method for example, to derive a signal-only reference trace Ps-ref (λ).
Step2:
Using the Variable Optical Attenuator (VOA) 508, the transmitter total signal power is set to that of network operation conditions (condition “-op”) and to another power level (condition “-an”) around the operation power level (e.g., 1 to 2 dB higher).
For these conditions, respective optical spectrum traces, Psum-op(λ) and Psum-an(λ), are acquired and OSNRASE measured as in step 1 to obtain Ps-op(λ) and Ps-an (λ), respectively.
Step 3:
For these conditions (“-op” and “-an”), the signal deformation optical signal to noise ratios, OSNRSD-op and OSNRSD-an, are derived as follows.
Two optical differential spectrums are calculated as
ΔSSD-op (λ)=Ps-op (λ)−k01 Ps-ref (λ) (21a)
ΔSSD-an (λ)=Ps-an (λ)−k02 Ps-ref (λ) (21b)
where k01=Ps-op (λpeak)/Ps-ref (λpeak) and k02=Ps-an (λpeak)/Ps-ref (λpeak)
Then, the corresponding OSNRSD-op and OSNRSD-an an are derived from the OSNRSD definition in equation (16) and (17).
Step 4:
For these conditions (“-op” and “-an”), the nonlinear optical signal to noise ratios, OSNRNL-op and OSNRNL-an, are derived as follows.
From equations (18) and (19), we find:
1/OSNRNL-op−1/OSNRNL-ref=(F/OSNRSD-op)n (22)
1/OSNRNL-an−1/OSNRNL-ref=(F/OSNRSD-an)n (23)
Knowing from the Gaussian noise model for uncompensated optical fibers (see P. Pecci et al., “Experimental Characterization of Submarine “Open Cable” using Gaussian-noise Model and OSNRWET Parameter,” Proc. OFC 2017, M2E.4), that non-linear effect impairments generally increase proportionally to the square signal power, we find:
OSNR
NL-ref
/OSNR
NL-op
=k
01
2 (24)
OSNR
NL-ref
/OSNR
NL-an
=k
02
2 (25)
Step 5:
The n parameter may then be found from equations (22) to (25) as:
n=[Log(k022−1)−Log(k012−1)]/[Log(OSNRSD-op)−Log(OSNRSD-an)] (26)
GOSNR:
Once exponent n is found as explained hereinabove and the noise shape factor F determined, and the OSNRASE-op determined using the OSA 516 and employing any method known in the art, the GOSNR may be determined as follows.
Using the found exponent n and the F parameter, the nonlinear OSNR, OSNRNL-op, may be derived from equations of (22) and (24).
And finally, from the measured OSNRASE and the determined OSNRNL, the GOSNR may be found using equation (6):
1/GOSNRop=1/OSNRASE-op+1/OSNRNL-op (27)
If needed for the intended application, OSNRNL-an may be derived similarly from equations (23) and (25) and GOSNRan be found from the measured OSNRASE and the determined OSNRNL.
It will be appreciated that the two methods described herein can also be advantageously combined. In some applications, the opto-electronic method may be applied at commissioning and the all-optical method be used for in-service monitoring. Advantageously, OSA acquisitions made at commissioning in steps 1 and 3 of the opto-electronic method can also be used for the all-optical method. These acquisitions can be used to derive the exponent n and the noise shape factor F and save a reference optical spectrum trace for later use in the all-optical method. Then, in in-service monitoring, an OSA acquisition is performed at operation conditions and the GOSNR derived as described herein.
Example of Computer System Architecture
Much of the software application that is used to implement the herein-described methods resides on and runs on a computer system, which in one embodiment, is a personal computer, workstation, or a computer system of an Optical Spectrum Analyzer device such as OSA 216 of
The computer system 800 is controlled by the processor 802, which serves as the central processing unit (CPU) for the system. The processor 802 is a hardware device for executing software instructions. The processor 802 may comprise one or more processors, including central processing unit(s) (CPU), auxiliary processor(s) or generally any device for executing software instructions. When the computer system 800 is in operation, the processor 802 is configured to execute software stored within the memory 810, to communicate data to and from the memory 810, and to generally control operations of the computer system 800 pursuant to the software instructions. The I/O interfaces 804 may be used to receive user input from and/or for providing system output to one or more devices or components. The user input may be provided via, for example, a keyboard, touchpad, and/or a mouse. System output may be provided via a display device and a printer (not shown). I/O interfaces 804 may include, for example, a serial port, a parallel port, a Small Computer System Interface (SCSI), a Serial ATA (SATA), a fibre channel, Infiniband, iSCSI, a PCI Express interface (PCI-x), an Infrared (IR) interface, a Radio Frequency (RF) interface, a Universal Serial Bus (USB) interface, or the like.
The network interface 806 may be used to enable the computer system 800 to communicate over a computer network or the Internet. The network interface 806 may include, for example, an Ethernet card or adapter or a Wireless Local Area Network (WLAN) card or adapter. The network interface 806 may include address, control, and/or data connections to enable appropriate communications on the network. A data store 808 may be used to store data. The data store 808 may include any of volatile memory elements (e.g., random access memory (RAM, such as DRAM, SRAM, SDRAM, and the like)), nonvolatile memory elements (e.g., ROM, hard drive, tape, CDROM, and the like), and combinations thereof. Moreover, the data store 808 may incorporate electronic, magnetic, optical, and/or other types of storage media. In one example, the data store 808 may be located internal to the computer system 800 such as, for example, an internal hard drive connected to the local interface 812 in the computer system 800. Additionally, in another embodiment, the data store 808 may be located external to the computer system 800 such as, for example, an external hard drive connected to the I/O interfaces 804 (e.g., SCSI or USB connection). In a further embodiment, the data store 808 may be connected to the computer system 800 through a network, such as, for example, a network attached file server.
The memory 810 may include any of volatile memory elements (e.g., random access memory (RAM, such as DRAM, SRAM, SDRAM, etc.)), nonvolatile memory elements (e.g., ROM, hard drive, tape, CDROM, etc.), and combinations thereof. Moreover, the memory 810 may incorporate electronic, magnetic, optical, and/or other types of storage media. Note that the memory 810 may have a distributed architecture, where various components are situated remotely from one another, but can be accessed by the processor 802. The software in memory 810 may include one or more computer programs, each of which includes an ordered listing of executable instructions for implementing logical functions. The software in the memory 810 includes a suitable operating system (O/S) 814 and one or more computer programs 816. The operating system 814 essentially controls the execution of other computer programs, such as the one or more programs 816, and provides scheduling, input-output control, file and data management, memory management, and communication control and related services. The one or more programs 816 may be configured to implement the various processes, algorithms, methods, techniques, etc. described herein, such as the processing steps of the measurement method of
It should be noted that the architecture of the computer system as shown in
Example of OSA Device Architecture
The processor 1002 is a hardware device for executing software instructions. The processor 1002 may comprise one or more processors, including central processing units (CPU), auxiliary processor(s) or generally any device for executing software instructions. When the OSA device 1000 is in operation, the processor 1002 is configured to execute software stored within the memory 1010, to communicate data to and from the memory 1010, and to generally control operations of the OSA device 1000 pursuant to the software instructions. In an embodiment, the processor 1002 may include an optimized mobile processor such as optimized for power consumption and mobile applications. The I/O interfaces 1004 can be used to receive user input from and/or for providing system output. User input can be provided via, for example, a keypad, a touch screen, a scroll ball, a scroll bar, buttons, barcode scanner, and the like. System output can be provided via a display device such as a liquid crystal display (LCD), touch screen, and the like, via one or more LEDs or a set of LEDs, or via one or more buzzer or beepers, etc. The I/O interfaces 1004 can be used to display a graphical user interface (GUI) that enables a user to interact with the OSA device 1000 and/or output at least one of the values derived by the OSA analyzing module.
The radio 1006, if included, may enable wireless communication to an external access device or network. Any number of suitable wireless data communication protocols, techniques, or methodologies can be supported by the radio 1006, including, without limitation: RF; IrDA (infrared); Bluetooth; ZigBee (and other variants of the IEEE 802.15 protocol); IEEE 802.11 (any variation); IEEE 802.16 (WiMAX or any other variation); Direct Sequence Spread Spectrum; Frequency Hopping Spread Spectrum; Long Term Evolution (LTE); cellular/wireless/cordless telecommunication protocols (e.g. 3G/4G, etc.); NarrowBand Internet of Things (NB-IoT); Long Term Evolution Machine Type Communication (LTE-M); magnetic induction; satellite data communication protocols; and any other protocols for wireless communication. The data store 1008 may be used to store data, such as OSA traces and OSA measurement data files. The data store 1008 may include any of volatile memory elements (e.g., random access memory (RAM, such as DRAM, SRAM, SDRAM, and the like)), nonvolatile memory elements (e.g., ROM, hard drive, tape, CDROM, and the like), and combinations thereof. Moreover, the data store 1008 may incorporate electronic, magnetic, optical, and/or other types of storage media.
The memory 1010 may include any of volatile memory elements (e.g., random access memory (RAM, such as DRAM, SRAM, SDRAM, etc.)), nonvolatile memory elements (e.g., ROM, hard drive, etc.), and combinations thereof. Moreover, the memory 1010 may incorporate electronic, magnetic, optical, and/or other types of storage media. Note that the memory 1010 may have a distributed architecture, where various components are situated remotely from one another, but can be accessed by the processor 1002. The software in memory 1010 can include one or more computer programs, each of which includes an ordered listing of executable instructions for implementing logical functions. In the example of
It is noted that, in some embodiments, the I/O interfaces 1004 may be provided via a physically distinct mobile device (not shown), such as a handheld computer, a smartphone, a tablet computer, a laptop computer, a wearable computer or the like, e.g., communicatively coupled to the OSA device 1000 via the radio 106. In such cases, at least some of the programs 1016 may be located in a memory of such a mobile device, for execution by a processor of the physically distinct device. The mobile may then also include a radio and be used to transfer OSA measurement data files toward a remote test application residing, e.g., on a server.
It should be noted that the OSA device shown in
The embodiments described above are intended to be exemplary only. The scope of the invention is therefore intended to be limited solely by the appended claims.
Number | Date | Country | |
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62983038 | Feb 2020 | US | |
63044667 | Jun 2020 | US |