WO2011131555A1 - Phase skew compensation at a coherent optical receiver - Google Patents
Phase skew compensation at a coherent optical receiver Download PDFInfo
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- WO2011131555A1 WO2011131555A1 PCT/EP2011/055903 EP2011055903W WO2011131555A1 WO 2011131555 A1 WO2011131555 A1 WO 2011131555A1 EP 2011055903 W EP2011055903 W EP 2011055903W WO 2011131555 A1 WO2011131555 A1 WO 2011131555A1
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04B—TRANSMISSION
- H04B10/00—Transmission systems employing electromagnetic waves other than radio-waves, e.g. infrared, visible or ultraviolet light, or employing corpuscular radiation, e.g. quantum communication
- H04B10/60—Receivers
- H04B10/61—Coherent receivers
-
- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04B—TRANSMISSION
- H04B10/00—Transmission systems employing electromagnetic waves other than radio-waves, e.g. infrared, visible or ultraviolet light, or employing corpuscular radiation, e.g. quantum communication
- H04B10/60—Receivers
- H04B10/61—Coherent receivers
- H04B10/613—Coherent receivers including phase diversity, e.g., having in-phase and quadrature branches, as in QPSK coherent receivers
-
- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04B—TRANSMISSION
- H04B10/00—Transmission systems employing electromagnetic waves other than radio-waves, e.g. infrared, visible or ultraviolet light, or employing corpuscular radiation, e.g. quantum communication
- H04B10/60—Receivers
- H04B10/61—Coherent receivers
- H04B10/616—Details of the electronic signal processing in coherent optical receivers
- H04B10/6165—Estimation of the phase of the received optical signal, phase error estimation or phase error correction
-
- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04B—TRANSMISSION
- H04B10/00—Transmission systems employing electromagnetic waves other than radio-waves, e.g. infrared, visible or ultraviolet light, or employing corpuscular radiation, e.g. quantum communication
- H04B10/60—Receivers
- H04B10/61—Coherent receivers
- H04B10/65—Intradyne, i.e. coherent receivers with a free running local oscillator having a frequency close but not phase-locked to the carrier signal
Definitions
- the present invention relates to the field of optical communications, in particular to coherent optical receivers for optical communication networks. Even more in particular, the present invention relates to the compensation of a phase skew between in-phase and quadrature components at a coherent optical receiver for an optical communication network.
- d igital data are typically transmitted in the form of modulated optical signals.
- the digital data to be transmitted are used for digitally modulating an optical carrier, i.e. one or more parameters (amplitude and/or phase) of the optical carrier are varied according to the digital data thereby generating a modulated optical signal.
- the modulated optical signal may be expressed by the following equation:
- A is the amplitude of the modulated optical signal
- f is the frequency of the modulated optical signal
- ⁇ is the phase of the modulated optical signal.
- phase modulations PSK, DPSK, QPSK, etc.
- amplitude-phase modulations QAM, etc.
- the digital data to be transmitted typically comprise a sequence of symbols, each symbol comprising a predefined number M of bits.
- each possible symbol S is associated to a respective value 9, of the phase ⁇ . Therefore, the number of possible values 9, of the phase ⁇ is 2 M .
- the possible values 9, of the phase ⁇ are 4, e.g. ⁇ /4, 3/4 ⁇ , 5/4 ⁇ and 7/4 ⁇ .
- the modulated optical signal may be further expressed by the following equation:
- the in-phase component I and the quadrature component Q are ideally orthogonal, i.e. the integral of their product l-Q over a period 1/f is zero.
- the possible symbols S then lie on a circumference in the l-Q plane.
- the possible symbols Si , S2, S3 and S 4 can be represented as the points (V2 /2, V2 /2), (- V2 /2, V2 /2), (-V2 /2, -V2 /2) and (V2 /2, -V2 /2), respectively.
- the mod ulated optical signal s(t) is typical ly demodulated for retrieving the original digital data.
- a known receiver suitable for demodulating the modulated optical signal is the so-called "coherent optical receiver”.
- a coherent optical receiver typically comprises a local oscillator which generates a local optical carrier cos ⁇ ft) having frequency substantially equal to the frequency f of the modulated optical signal s(t). Then, the local optical carrier cos ⁇ ft) is split in two and a portion thereof is phase-shifted by ⁇ /2, thereby providing a first demodulation optical carrier cos ⁇ ft) and a second demodulation optical carrier 5 ⁇ (2 ⁇ ).
- the coherent optical receiver then typically combines the received modulated optical signal s(t) with the first demodulation optical carrier cos ⁇ ft) and with the second demodulation optical carrier 5 ⁇ (2 ⁇ ), and usually performs a photoelectric conversion of the resulting optical signals, thereby deriving the in-phase component ⁇ and the quadrature component Q' of the received modulated optical signal in the form of electrical signals.
- the in-phase component ⁇ and the quadrature component Q' basically correspond to the in-phase component I and quadrature component Q of the modulated optical signal s(t), except for noise and/or distortion introduced by propagation of the modulated optical signal s(t) along the optical link and/or by processing of the received modulated optical signal at the analog portion of the receiver.
- the coherent optical receiver typically performs an analog-to-digital conversion of the in-phase component ⁇ and the quadrature component Q', and subsequently digitally processes them for retrieving the digital data originally transmitted.
- digitally processing typically comprises sampling the in-phase component ⁇ and the quadrature component Q', thereby providing couples of samples IV and QV of the components ⁇ and Q', respectively.
- the sampling rate is typically higher than the symbol rate (e.g. twice the symbol rate). If the sampling rate is equal to the symbol rate, each couple is associated to a respective received symbol SV.
- Each received symbol SV can be represented in the l-Q plane as a point (IV, QV) whose Cartesian coordinates are IV and QV.
- Each point (IV, QV) is typically compared with all the points (I,,, Q,) associated to the possible symbols S, for determining the closest one (i.e. the one having the minimum distance in the l-Q plane).
- the possible symbol Si corresponding to the closest among the points (I,,, Q,) is then assumed to be the symbol actually transmitted.
- the above mentioned splitting and shifting operations carried over the local optical carrier cos ⁇ ft) generated at the coherent optical receiver can be source of a "phase skew" ⁇ between the first demodulation optical carrier cos ⁇ ft) and the second demodulation optical carrier 5 ⁇ (2 ⁇ ), i.e. the phase difference between the first demodulation optical carrier cos ⁇ ft) and the second demodulation optical carrier 5 ⁇ (2 ⁇ ) is not exactly ⁇ /2.
- the first demodulation optical carrier is ⁇ 05(2 ⁇ + ⁇ ).
- th e i n-phase component ⁇ and the quadrature component Q' resulting from this combining are disadvantageously not orthogonal but they are cross-correlated, i.e. the integral of their product over a period 1 /f is equal to sin(s). Therefore, disadvantageously, when the coherent optical receiver performs the analog-to-digital conversion of the in-phase component ⁇ and the quadrature component Q', and subsequently digitally processes them, the original digital data can not be retrieved with sufficient accuracy.
- ⁇ /2.
- each received symbol SV can be represented as one of two points (IV, QV) lying on a segment in the l-Q plane, the two points (IV, QV) being (V2 /2, V2 /2) and (-V2 /2, -V2 /2), irrespective of the symbol actually transmitted.
- the possible symbol associated to the closest point is Si or S3. Therefore, if S2 or S 4 was originally transmitted, it can not be correctly retrieved.
- the phase skew may be compensated by adding a quadrature term to th e i n-phase component ⁇ and adding an in-phase term to the quadrature component Q'.
- Th ese q u ad ratu re a nd i n-phase terms are computed by multiplying the quadrature component Q' and the in-phase component ⁇ , respectively, by a common cross-gain factor G depending on the cross-correlation between the in-phase component ⁇ and the quadrature component Q'.
- adding the quadrature and in-phase terms to the in-phase component ⁇ and to the quadrature component Q' modifies the power of the two components. This is disadvantageous in that, for allowing proper retrieval of the digital data originally transmitted, both the in-phase component ⁇ and the quadrature component Q', as received by the digital portion, should have their powers constantly equal to a nominal value.
- the inventors have addressed the problem of providing a coherent optical receiver which is able to compensate the phase skew between the in-phase component and the quadrature component, which overcomes the aforesaid drawback.
- the inventors have addressed the problem of providing a coherent optical receiver wh ich is able to compensate the phase skew between the in-phase component and the quadrature component and that, in the meanwhile, does not modify the power of the in-phase component and of the quadrature component.
- the present invention provides a coherent optical receiver for an optical communication network, the coherent optical receiver being configured to receive a modulated optical signal and to process the modulated optical signal for generating an in-phase component and a quadrature component, the optical coherent receiver comprising a phase skew compensator in turn comprising:
- a first digital circuit configured to provide:
- phase skew compensated in-phase component as a sum of the in- phase com ponent m u ltipl ied by a fi rst ga in and the q uadratu re component multiplied by a second gain;
- phase skew compensated quadrature component as a sum of the in- phase component multiplied by a third gain and the quadrature component multiplied by a fourth gain
- a second digital circuit retroactively connected between an output and a control input of the first digital circuit and configured to compute the first gain, the second gain, the third gain and the fourth gain as functions of an estimated cross-correlation between the phase skew compensated in- phase component and the phase skew compensated quadrature component.
- the second digital circuit is configured to compute the first gain and the fourth gain as a function of the estimated cross-correlation according to the following equation:
- G1 1 being the first gain
- G22 being the fourth gain
- R[m] being the estimated cross-correlation
- the second digital circuit is configured to compute the second gain and the th ird gain as a function of the estimated cross-correlation according to the following equation:
- G12 being the second gain
- G21 being the third gain
- R[m] being the estimated cross-correlation
- the second digital circuit comprises a multiply-and-add module and an accumulator connected at the output of the first digital circuit, wherein:
- the multiply-and-add module is configured to receive N samples of the phase skew compensated in-phase component and N samples of the phase skew compensated quadrature component from the first digital circuit, N being an integer equal to or higher than 1 , and to calculate a sum according to the following equation:
- the accumulator is configured to update its content by adding the sum to it, thereby obtaining the estimated cross-correlation.
- the second d ig ital ci rcu it fu rth er com prises a multiplier interposed between the multiply-and-add module and the accumulator, the multiplier being configured to multiply the sum by an adaptation factor before forwarding it to the accumulator.
- the multiply-and-add module is configured to select a subset of the N samples of the phase skew compensated in-phase component and the N samples of the phase skew compensated quadrature component, and to calculate the sum according to the selected subset.
- the second digital circuit further comprises a first lookup table and a second lookup table, wherein:
- the first lookup table stores a number of possible cross-correlation values and a same number of correspond ing possible values of the first gain calculated according to the following equation:
- Ri being the number of possible cross-correlation values and G1 1 , being the same number of corresponding possible values of the first gain
- Ri being the number of possible cross-correlation values and G12, being the same number of corresponding possible values of the second gain.
- the first lookup table is configured to receive the estimated cross-correl ation , to determ in e, among the n u m ber of poss ible cross- correlation val ues, the possible cross-correlation value closest to the estimated cross-correlation, and to set the first gain and the fourth gain equal to the one of the same number of corresponding possible values of the first gain that corresponds to the closest possible cross-correlation value;
- the second lookup table is configured to receive the estimated cross-correlation, to determine, among the number of possible cross-correlation values, the possible cross-correlation value closest to the estimated cross-correlation, and to set the second gain and the third gain equal to the one of the same number of corresponding possible values of the second gain that corresponds to the closest possible cross-correlation value.
- the second digital circuit further comprises a lookup table and a computation module, wherein:
- the computation module is configured receive the estimated cross- correlation and to compute the second gain and the third gain according to the following equation:
- G1 1 being the first gain
- G22 being the fourth gain
- R[m] being the estimated cross-correlation
- the lookup table stores a number of possible values of the second gain and a same number of corresponding possible values of the first gain calculated according to the following equation:
- the lookup table is configured to receive the computed second gain from the computation module, to determine, among the number of possible values of the second gain, the possible second gain value closest to the computed second gain and to set the first gain and the fourth gain equal to the one of the same number of corresponding possible values of the first gain that corresponds to the closest possible second gain value.
- the phase skew compensator is an ASIC module or an FPGA module.
- the present invention provides a node for an optical communication network, the node comprising a coherent optical receiver as set forth above.
- the present invention provides an optical communication network comprising a node as set forth above.
- the present invention provides a method for compensating a phase skew between an in-phase component and a quadrature component of a modulated optical signal received at a coherent optical receiver for an optical communication network, the method comprising:
- FIG. 1 schematically shows a block diagram of a coherent optical receiver according to an embodiment of the present invention
- Figure 1 shows a block diagram of a coherent optical receiver RX for a node (not shown in the drawings) of an optical communication network, according to a preferred embodiment of the present invention.
- the coherent optical receiver RX preferably comprises a carrier generator CG, an analog portion AP, an in-phase analog-to-digital converter A D
- the coherent optical receiver RX may comprise other modules that are not shown in the drawings, as they are not relevant to the present description.
- the analog portion AP preferably has two inputs and two outputs. One of the inputs of the analog portion AP is connected to the output of the carrier generator CG, while the other one substantially corresponds to the input of the coherent optical receiver RX.
- One of the outputs of the analog portion AP is preferably connected to the in-phase analog-to-digital converter A D
- the power adjuster PA preferably has two inputs and two outputs.
- and the quadrature analog-to-digital converter A D Q are preferably connected to the inputs of the power adjuster PA.
- the phase skew compensator PSC preferably has two inputs and two outputs.
- the outputs of the power adjuster PA are preferably connected to the inputs of the phase skew compensator PSC.
- the digital portion DP has two inputs, which are preferably connected to the outputs of the phase skew compensator PSC.
- the carrier generator CG preferably generates a first demodulation optical carrier ⁇ 05(2 ⁇ + ⁇ ), having frequency substantially equal to the frequency f of the modulated optical signal s(t).
- the first demodulation carrier cos ⁇ ft) is provided at the input of the analog portion AP, which generates a second demodulation optical carrier 5 ⁇ (2 ⁇ ), whose frequency is also substantially equal to the frequency f of the modulated optical signal s(t).
- ⁇ is th e phase skew between th e fi rst and second demodulation carriers.
- the analog portion AP combines the modulated optical signal s(t) with the first demodulation carrier cos ⁇ ft+s) and opto- electrically converts the result, thereby providing an in-phase component ⁇ .
- the analog portion AP combines the modulated optical signal s(t) with the second demodulation optical carrier 5 ⁇ (2 ⁇ ) and opto-el ectrica l ly converts th e resu lt, thereby provid i ng a q uad ratu re component Q'.
- the components ⁇ and Q' provided at the output of the analog portion AP are preferably in the form of analog electrical signals.
- preferably receives the in- phase component ⁇ and samples it in order to provide, at its output, a sequence of in-phase samples IV.
- Su bstantial ly at the sa me ti me, th e quadrature analog-to-digital converter A D Q preferably receives the quadrature component Q' and samples it in order to provide, at its output, a sequence of quadrature samples QV.
- the power adjuster PA preferably adjusts the power of the in-phase samples IV and the quadrature samples QV so that their powers have a same nominal value.
- the operation of the power adjuster PA will not be described in further detail, since it is not relevant to the present description.
- the phase skew compensator PSC receives the in-phase samples IV and the quadrature samples QV and compensates the effects induced on the components ⁇ and Q' by the phase skew ⁇ , thereby providing at its output phase skew compensated in-phase samples V * and phase skew compensated quadrature samples Qk * , as it will be described in detail herein after.
- the phase skew compensator PSC preferably forwards the phase skew compensated in-phase samples V* and the phase skew compensated quadrature samples Qk* to the digital portion DP, that processes them for retrieving the digital data originally transmitted.
- the operation of the digital portion DP depends on the type of digital modulation applied to the modulated optical signal s(t), and will not be described in further detail, since it is not relevant to the present description.
- phase skew compensator PSC according to a preferred embodiment of the present invention will be now described in detail.
- the phase skew ⁇ may be compensated by applying to the points (IV, QV) a transformation equivalent to that transforming the coordinates of the points ⁇ , P'2, P'3 and P'4 into the coordinates of the points P1 , P2, P3 and P4, respectively.
- this transformation does not modify the power the of in-phase component l' k and the quadrature component Q' k , since the amplitude A remains the same.
- This transformation comprises applying the following steps to each point (l' k , Q' k ):
- phase skew compensated in-phase sample l k * and the phase skew compensated quadrature sample Q k * can be obtained by implementing the following equation:
- phase skew ⁇ may be estimated from the cross-correlation R between the in-phase component ⁇ and the quadrature component Q', since the cross-correlation R is:
- phase skew compensator PSC of Figure 2 substantially implements the above equation [5].
- the phase skew compensator PSC of Figure 2 preferably comprises a first amplifier A1 1 , a second amplifier A12, a third amplifier A21 , a fourth amplifier A22, a first adder S1 , a second adder S2, a multiply-and-add module MA, a multiplier M, an accumulator ACC, a first lookup table LT1 and a second lookup table LT2.
- the inputs of the first amplifier A1 1 and the third amplifier A21 are connected to one of the inputs of the phase skew compensator PSC.
- the inputs of the second amplifier A12 and the fourth amplifier A22 are connected to the other input of the phase skew compensator PSC.
- the output of the first amplifier A1 1 and the output of the second amplifier A12 are connected to the inputs of the first adder S1 , while the output of the third amplifier A21 and the output of the fourth amplifier A22 are connected to the inputs of the second adder S2.
- the amplifiers A1 1 , A12, A21 and A22 are preferably digital amplifiers.
- the output of the first adder S1 and the output of the second adder S2 are connected to the inputs of the multiply-and-add module MA.
- the output of the multiply-and-add module MA is connected to one of the inputs of the multipl ier M and the output of the multiplier M is connected to the input of the accumulator ACC.
- the output of the accumulator ACC is connected to the inputs of the first lookup table LT1 and the second lookup table LT2.
- the output of the first lookup table LT1 is connected to control inputs of the first amplifier A1 1 and the fourth amplifier A22, while the output of the second lookup table LT2 is connected to control inputs of the second amplifier A12 and the third amplifier A21 .
- the first lookup table LT1 preferably comprises a number (e.g. 256) of possible cross-correlation values R, and a number of corresponding possible values G1 1 , of a first gain G1 1 , computed according to the above equations [6a] and [8] as follows: cos(asin(R j )/2)
- the second lookup table LT2 comprises the number of possible cross-correlation values R, and a number of corresponding possible values G12i of a second gain G12, computed according to the above equations [6b] and [8] as follows:
- the first lookup table LT1 and the second lookup table LT2 are ROM ("Read Only Memory") modules.
- the possible cross- correlation values F3 ⁇ 4 may be -128/128, -127/128, -1 26/128, ... 124/1 28, 125/128, 126/128 and 127/128.
- the resolution of the possible cross- correlation values is 1/128.
- the first and second lookup tables LT1 , LT2 comprise M memory locations, the maximum achievable resolution is 1/(M/2).
- the phase skew compensator PSC further preferably comprises a clock input (not shown in the drawings) configured to receive a clock signal from a clock unit (also not shown in the drawings) located at the coherent optical receiver RX, and to provide it to all the components of the phase skew compensator PSC for synchronizing their operation.
- a clock input (not shown in the drawings) configured to receive a clock signal from a clock unit (also not shown in the drawings) located at the coherent optical receiver RX, and to provide it to all the components of the phase skew compensator PSC for synchronizing their operation.
- phase skew compensator PSC of Figure 2 the operation of the phase skew compensator PSC of Figure 2 will be described in detail.
- the following description is referred to the operation of the phase skew compensator PSC in a clock cycle of the above mentioned clock signal .
- the operations described below are periodically repeated at each clock cycle.
- the phase skew compensator PSC receives from the power adjuster PA a number N of in-phase samples IV and a number N of corresponding quadrature samples QV-
- the number N preferably is an integer equal to or higher than 1 .
- the N in-phase samples IV are preferably received by the first amplifier A1 1 and the third amplifier A21 .
- the first amplifier A1 1 preferably multiplies each of the N in-phase samples IV by the first gain G1 1 currently output by the first lookup table LT1 , and forwards it to the first adder S1 .
- the third amplifier A21 preferably multiplies each of the N in-phase samples IV by a third gain G21 and forwards it to the second adder S2.
- the third gain G21 is preferably equal to the second gain G12 that is currently output by the second lookup table LT2.
- the N quadrature samples QV are preferably received by the second amplifier A12 and the fourth amplifier A22.
- the second amplifier A12 preferably multiplies each of the N quadrature samples QV by the second gain G12 currently output by the second lookup table LT2, and forwards it to the first adder S1 .
- the fourth amplifier A22 preferably multiplies each of the N quadrature samples QV by a fourth gain G22 and forwards it to the second adder S2.
- the fourth gain G22 is preferably equal to the first gain G1 1 that is currently output by the first lookup table LT1 .
- the first adder S1 preferably receives the N products G1 1 IV from the first amplifier A1 1 and the N products G12 QV from the second amplifier A12 and adds them thereby providing at its output N phase skew compensated in- phase samples Ik* according to the following equation:
- the N phase skew compensated in-phase samples Ik* are then preferably provided at the output of the phase skew compensator PSC.
- the N phase skew compensated quadrature samples Qk* are then preferably provided at the output of the phase skew compensator PSC.
- the N phase skew compensated in-phase samples Ik* provid ed at th e output of th e fi rst add e r S 1 a nd th e N ph ase s kew compensated quadrature samples Qk* provided at the output of the second adder S2 are received by the multiply-and-add module MA.
- the multiply-and- add module MA preferably comprises N multipliers and an adder with N inputs and a single output. Each of the N multipliers preferably multiplies one of the
- the adder preferably calculates a sum S of all the N products Ik*- Qk* received from the N multipliers according to the following equation:
- the multiply-and-add module MA may be configured to select a subset of L samples Ik* and Qk* (L ⁇ N) and apply the above equation [1 1 ] only to the selected samples, thereby implementing a statistic downsampl ing .
- the multiply-and-add module MA advantageously comprises only L multipliers.
- the multiply-and-add module MA preferably forwards the sum S to the multiplier M, that preferably multiplies the sum S by an adaptation factor K and forwards the result K S to the accumulator ACC.
- the accumulator ACC preferably adds the result K S to its content according to the following equation:
- R[m] R[m - 1 ] + K - S , [12]
- R[m-1 ] is the content of the accumulator ACC at the end of the previous clock cycle
- R[m] is the content of the accumulator ACC as updated during the current clock cycle.
- the accumulator ACC then acts as an integrator calculating the integral of K S over successive clock cycles.
- the content of the accumulator ACC R[m] is then basically an estimated cross- correlation between the phase skew compensated in-phase samples Ik* and the phase skew compensated quadrature samples Qk*.
- the accumulator ACC preferably forwards its updated content R[m] to the first lookup table LT1 and to the second lookup table LT2.
- the first lookup table LT1 preferably receives the estimated cross- correlation R[m], which is compared with the possible cross-correlation values Ri stored therein.
- the first lookup table LT1 then preferably sets the first gain G1 1 and the fourth gain G22 substantially equal to the possible value G1 1 , corresponding to the possible cross-correlation value R, closest to the estimated cross-correlation R[m].
- the resulting first gain G1 1 and fourth gain G22 are then substantially provided by the following equation:
- the first lookup table LT1 forwards the first gain G1 1 to the first amplifier A1 1 and the fourth gain G22 to the fourth amplifier A22.
- the first amplifier A1 1 and the fourth amplifier A22 preferably use these values of the first gain G1 1 and the fourth gain G22 for multiplying the N samples IV and QV, respectively, that will be received during the next clock cycle.
- the second lookup table LT2 preferably receives the estimated cross-correlation R[m], which is compared with the possible cross-correlation values R, stored therein.
- the second lookup table LT2 then preferably sets the second gain G12 and the third gain G21 substantially equal to the possible value G12, corresponding to the possible cross-correlation value R, closest to the estimated cross-correlation R[m].
- the second lookup table LT2 forwards the second gain G12 to the second amplifier A12 and the third gain G21 to the third amplifier A21 .
- the second amplifier A12 and the third amplifier A21 preferably use these values of the second gain G12 and the third gain G21 for multiplying the N samples QV and IV, respectively, that will be received during the next clock cycle.
- the computations of equations [13a] and [13b] may be performed by su itable d igital circuits arranged downstream the accumulator ACC and suitable for applying the equations [13a] and [13b] directly to the estimated cross-correlation R[m] output by the accumulator ACC.
- Th is alternative solution is preferred to the lookup table solution when the required resolution of the possible cross-correlation values R, is very reduced, and would therefore require lookup tables with a very high number of memory locations.
- the phase skew compensator PSC described above is able to compensate the phase skew ⁇ between the in-phase component ⁇ and the quadrature component Q', while at the same time it does not change their powers.
- the gains of the amplifiers are specifically selected for compensating the phase skew without changing the powers of the phase skew compensated in-phase samples Ik* and the phase skew compensated quadrature samples Qk*. Therefore, these powers are equal to the nominal values set by the power adjuster PA.
- phase skew compensator PSC according to an advantageous variant will be now described in detail.
- phase skew compensator PSC of Figure 3 is similar to the phase skew compensator PSC of Figure 2. Therefore, a detailed description of its structure will be omitted.
- the phase skew compensator PSC comprises only one lookup table LT and a computation module C.
- the computation module C preferably has an input connected at the output of the accumulator ACC and an output connected to the lookup table LT and to the control inputs of the second amplifier A12 and the third amplifier A21 .
- the lookup table LT preferably comprises a number of possible values G12, of the second gain G12 and a number of corresponding possible values G1 1 , of a first gain G1 1 , computed according to the following equation:
- the lookup table LT is a ROM module.
- phase skew compensator PSC of Figure 3 the operation of the phase skew compensator PSC of Figure 3 will be described in detail. Again, the following description is referred to the operation of the phase skew compensator PSC in a clock cycle of the clock signal generated at the coherent optical receiver RX. Preferably, the operation described below is periodically repeated at each clock cycle.
- the phase skew compensator PSC receives N in- phase samples IV and N quadrature samples QV.
- the processing of the N samples IV and QV by means of the amplifiers A1 1 , A12, A21 , A22, the adders S1 , S2, the multiply-and-add module MA, the multiplier M and the accumulator ACC is substantially the same as described above with reference to Figure 2. Hence, a detailed description will not be repeated . It is only recalled that accumulator ACC preferably outputs an estimated cross-correlation R[m] according to the above equation [12].
- the estimated cross-correlation R[m] is preferably forwarded to the computation module C, that preferably calculates the second gain G1 2 and the third gain G21 according to the equation [13b] reported above, i.e.:
- the computation module C preferably forwards the second gain G12 and the third gain G21 to the second amplifier A12 and the third amplifier A21 , respectively.
- the second amplifier A12 and the third amplifier A21 preferably use these values of the second gain G 1 2 and the th ird gain G21 for multiplying the N samples QV and IV, respectively, that will be received during the next clock cycle.
- the computation module C preferably forwards the second gain G12 to the lookup table LT.
- the lookup table LT preferably receives the second gain G12, which is compared with the possible values G12, stored therein.
- the lookup table LT then preferably sets the first gain G1 1 and the fourth gain G22 substantially equal to the possible value G1 1 , corresponding to the possible value G12, closest to the second gain G12 calculated by the computation module C.
- the resulting first gain G1 1 and fourth gain G22 are then substantially provided by the following equation:
- the lookup table LT forwards the first gain G1 1 to the first amplifier A1 1 and the fourth gain G22 to the fourth amplifier A22.
- the first amplifier A1 1 and the fourth amplifier A22 preferably use these values of the first gain G1 1 and the fourth gain G22 for multiplying the N samples IV and QV, respectively, that will be received during the next clock cycle.
- phase skew compensator PSC is able to compensate the phase skew ⁇ between the in- phase component ⁇ and the quadrature component Q', while the powers of the in-phase component ⁇ and the quadrature component Q' are not modified by the phase skew compensator PSC and they are thus equal to the nominal values as establ ished by the power adjuster PA.
- equation [15] expressing G1 1 and G22 as a function of G12 is basically obtained by combining the above equations [13a] and [13b].
- phase skew compensator PSC according to this advantageous variant is simpler than the phase skew compensator PSC of Figure 2.
- the phase skew compensator PSC according to this advantageous variant advantageously comprises a single lookup table and thus it allows saving computational resources and costs.
- the functions of the various elements shown in Figure 2 or in Figure 3 may be provided through the use of dedicated hardware, programmable hardware or a hardware capable of executing software in association with appropriate software.
- the functions of the various elements shown in Figure 2 or in Fig ure 3 are preferably provided through the use of one or more application specific integrated circuits (ASIC) and/or one or more field programmable gate arrays (FPGA).
- ASIC application specific integrated circuit
- FPGA field programmable gate arrays
- the functions of the various elements shown in Figure 2 or in Figure 3 are provided through the use of a single ASIC or a single FPGA.
- first digital circuit and second digital circuit mentioned in the claims are to be understood merely as functional aggregations of the elements of th e phase skew compensator, and they should not be understood necessarily as physically separated circuits implemented on separated hardware devices.
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Abstract
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Priority Applications (4)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| US13/637,785 US20130287410A1 (en) | 2010-04-21 | 2011-04-14 | Phase skew compensation at a coherent optical receiver |
| JP2013505414A JP2013528995A (en) | 2010-04-21 | 2011-04-14 | Phase skew correction in coherent optical receivers. |
| KR1020127027458A KR101508912B1 (en) | 2010-04-21 | 2011-04-14 | Phase skew compensation at a coherent optical receiver |
| CN201180020133.XA CN102859908B (en) | 2010-04-21 | 2011-04-14 | Phase Offset Compensation for Coherent Optical Receivers |
Applications Claiming Priority (2)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| EP10305417.7 | 2010-04-21 | ||
| EP10305417A EP2381595B1 (en) | 2010-04-21 | 2010-04-21 | Phase skew compensation at a coherent optical receiver |
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| Publication Number | Publication Date |
|---|---|
| WO2011131555A1 true WO2011131555A1 (en) | 2011-10-27 |
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Family Applications (1)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| PCT/EP2011/055903 Ceased WO2011131555A1 (en) | 2010-04-21 | 2011-04-14 | Phase skew compensation at a coherent optical receiver |
Country Status (6)
| Country | Link |
|---|---|
| US (1) | US20130287410A1 (en) |
| EP (1) | EP2381595B1 (en) |
| JP (1) | JP2013528995A (en) |
| KR (1) | KR101508912B1 (en) |
| CN (1) | CN102859908B (en) |
| WO (1) | WO2011131555A1 (en) |
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| US9240843B1 (en) * | 2012-12-28 | 2016-01-19 | Juniper Networks, Inc. | Method and apparatus for blind time skew compensation for coherent optical receivers |
| EP2930867B1 (en) | 2013-01-25 | 2019-04-24 | Nippon Telegraph and Telephone Corporation | Light-receiving device and phase cycle slip reduction method |
| KR102131070B1 (en) | 2014-01-21 | 2020-07-07 | 삼성전자주식회사 | Optical interface module for coherent reception, optical memory module and optical memory system including the same |
| JP6315040B2 (en) * | 2016-08-29 | 2018-04-25 | Nttエレクトロニクス株式会社 | Optical transmission distortion compensation apparatus, optical transmission distortion compensation method, and communication apparatus |
| CN106878215B (en) * | 2017-01-18 | 2019-09-27 | 深圳市极致汇仪科技有限公司 | A kind of DPSK fast modulation method of Bluetooth signal |
| FR3075975B1 (en) * | 2017-12-21 | 2020-05-22 | Thales | SIGNAL RECEIVER, PARTICULARLY GNSS SIGNALS, INCLUDING AN INTERFERENCE REJECTION FILTER, AND ASSOCIATED METHOD |
| US10587294B1 (en) | 2018-09-14 | 2020-03-10 | Viasat, Inc. | Digital signal conditioner system |
| CN112118053B (en) | 2019-06-21 | 2022-01-14 | 华为技术有限公司 | Signal processing method and optical receiver |
| CN114745061B (en) * | 2022-03-31 | 2025-01-10 | 中国人民解放军国防科技大学 | An integrated receiving system for broadband and large dynamic range optical network signals |
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Also Published As
| Publication number | Publication date |
|---|---|
| CN102859908A (en) | 2013-01-02 |
| KR20130007624A (en) | 2013-01-18 |
| JP2013528995A (en) | 2013-07-11 |
| CN102859908B (en) | 2015-04-29 |
| EP2381595B1 (en) | 2012-06-20 |
| EP2381595A1 (en) | 2011-10-26 |
| US20130287410A1 (en) | 2013-10-31 |
| KR101508912B1 (en) | 2015-04-07 |
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