This application is based upon and claims the benefit of priority from the prior Japanese Patent Application No. 2006-098288, filed on Mar. 31, 2006, the entire contents of which are incorporated herein by reference.
1. Field of the Invention
The present invention relates to an optical transmission system, and, in particular, is preferably used in a reproduction interconnection device in optical communication.
2. Description of the Related Art
In optical communication, a reproduction interconnection device is used in order to suppress deterioration of an optical signal due to a noise of an amplifier or waveform distortion during transmission. When an optical nonlinear element which has nonlinear input/output characteristics as shown in
In a case that waveform-shaping of the optical signal is performed using the optical nonlinear element, if an input signal is the one having a specific input power (for example, an input power IP2) on an input/output curve of the optical nonlinear element as shown in
As shown in
In the reproduction interconnection device in which the optical nonlinear element is used, a condition (input power to the optical nonlinear element) enabling to obtain an output signal of a good waveform is determined in response to the input signal and the input/output characteristics of the optical nonlinear element. When the condition is to be determined, it is necessary to recognize a cross point in an eye pattern of the input signal or the output signal. Here, in Patent Document 3, Patent Document 4 and the like, evaluation methods of optical signals are proposed.
[Patent Document 1] Japanese Patent Application Laid-open No. 2001-222037
[Patent Document 2] Japanese Patent Application Laid-open No. 2002-44020
[Patent Document 3] Japanese Patent Application Laid-open No. 2004-173026
[Patent Document 4] Japanese Patent No. 3459213
However, it is not easy to directly measure the cross point in the input signal or the output signal to determine the input power to the optical nonlinear element. Additionally, kinds of the input signal inputted to the optical nonlinear element vary. Therefore, it is difficult to respond to various input signals by a method in which the cross point is directly measured to control the input power to the optical nonlinear element to be a specific value enabling to obtain a good output waveform.
An object of the present invention is to make it possible that an input power to an optical nonlinear element is easily set at a value enabling to obtain a good output waveform, for any inputted optical signal.
An optical transmission system of the present invention includes an optical nonlinear element having nonlinear input/output characteristics, a power detector detecting a power of a specific frequency component related to the optical signal reproduced by the optical nonlinear element, and a variable amplifier amplifying or attenuating the optical signal inputted to the optical nonlinear element, and a gain of the variable amplifier is controlled in response to a detection result by the power detector.
According to the present invention, evaluation of an output signal waveform is performed by detecting a power of a specific frequency component from an electrical signal obtained by converting an optical signal reproduced by an optical nonlinear element. By making a gain of a variable amplifier increase or decrease properly based on a result thereof, an input power of an optical signal inputted to the optical nonlinear element is controlled, and thereby, the input power to the optical nonlinear element can be easily set such that a good output waveform can be obtained.
Hereinafter, embodiments of the present invention will be described based on the drawings.
The reproduction interconnection device in the first embodiment has, as shown in
The variable amplifier (variable attenuator) 10 amplifies or attenuates the inputted optical signal SIN and outputs to the optical nonlinear element 20. In other words, the variable amplifier (variable attenuator) 10 controls a power of the optical signal inputted to the optical nonlinear element 20 (input power to the optical nonlinear element 20). A gain of the variable amplifier (variable attenuator) 10 is controlled by the control circuit 60.
The optical nonlinear element 20 is an element having nonlinear input/output characteristics as shown in
The photo detector 30 is to perform photoelectric conversion and converts the optical signal SOUT after waveform-shaping (reproduction) which is outputted from the optical nonlinear element 20 to an electrical signal SOUTA. The band pass filter 40 retrieves a bit rate frequency component Sbr equivalent to a bit rate of the input signal, from the electrical signal SOUTA obtained by conversion in the photo detector 30. To put it differently, the band pass filter 40 passes only the bit rate frequency component Sbr in the electrical signal from the photo detector 30. The power monitor 50 measures a power Pbr of the bit rate frequency component Sbr retrieved by the band pass filter 40, in other words, a power of the signal having passed through the band pass filter 40.
The photo detector 30, the band pass filter 40, and the power monitor 50 comprise a power detector of the present invention. By this power detector, it is possible to measure the bit rate frequency component power Pbr in the electrical signal obtained by photoelectrically converting the optical signal SOUT outputted from the optical nonlinear element 20.
The control circuit 60 performs gain control of the variable amplifier (variable attenuator) 10 based on the bit rate frequency component power Pbr detected by the photo detector 30, the band pass filter 40, and the power monitor 50.
Here, the bit rate frequency component power Pbr has a disposition of varying in response to a cross point position in the outputted optical signal SOUT. As shown in an example in
Therefore, presuming that the output waveform is optimum when the cross point of the outputted optical signal SOUT is at the position of 50%, a good output waveform can be obtained if the gain of the variable amplifier (variable attenuator) 10 is controlled such that the bit rate frequency component power Pbr obtained based on the outputted optical signal SOUT becomes minimum.
Additionally, the gain of the variable amplifier (variable attenuator) 10 and the power Pbr of the bit rate frequency component have a relation shown in
The control circuit 60 in the present embodiment controls such that the power Pbr of the bit rate frequency component becomes minimum, in other words, such that the gain of the variable amplifier (variable attenuator) 10 is the optimum gain GA. This control is performed according to a control algorithm as below.
The control circuit 60, which generates a control voltage for controlling the gain of the variable amplifier (variable attenuator) 10, superimposes a signal of small amplitude to this control voltage as shown in
Then, the control circuit 60 obtains the bit rate frequency component power Pbr according to the optical signal SOUT obtained by making the gain of the variable amplifier (variable attenuator) 10 vary periodically and minutely by superimposing the signal of small amplitude to the control voltage, and compares variation of the bit rate frequency component power Pbr and variation of the signal VCTL.
As a result, in a case that the signal VCTL and the bit rate frequency component power Pbr vary in a relation of reverse-phase as shown in
On the other hand, in a case that the signal VCTL and the bit rate frequency component power Pbr vary in a relation of in-phase as shown in
By repeating the above operations, the control circuit 60 can converge the gain of the variable amplifier (variable attenuator) 10 to the optimum gain GA and maintain it.
According to the first embodiment, from the electrical signal SOUTA obtained by photoelectrically converting, by the photo detector 30, the optical signal SOUT after reproduction which is outputted from the optical nonlinear element 20, the bit rate frequency component power Pbr is detected by the band pass filter 40 and the power monitor 50. In response to this detection result, the control circuit 60 performs gain control of the variable amplifier (variable attenuator) 10, specifically such that the detected bit rate frequency component power Pbr becomes minimum, and then the input power to the optical nonlinear element is controlled.
Hereby, not by directly measuring the cross point of the inputted or outputted optical signal but by performing waveform evaluation of the outputted optical signal SOUT by an easy method to properly control the gain of the variable amplifier (variable attenuator) 10, the input power to the optical nonlinear element 20 can be easily set such that a good output waveform can be obtained. Therefore, it is possible to provide a reproduction interconnection device which is small and capable of performing good waveform-shaping for any inputted optical signal by a method which can be easily reduced in cost.
Next, a second embodiment of the present invention will be described.
The reproduction interconnecting device in the second embodiment has, as shown in
The band pass filter 41 and the power monitor 51 correspond to the band pass filter 40 and the power monitor 50 respectively.
The low pass filter 42 retrieves a direct current (DC) component SDC from an electrical signal SOUTA obtained by conversion in the photo detector 30. To put it differently, the low pass filter 42 passes only the direct current component SDC in the electrical signal from the photo detector 30. The power monitor 52 measures a power PDC of the direct current component SDC retrieved by the low pass filter 42, in other words, a power of the signal having passed through the low pass filter 42.
The photo detector 30, the band pass filter 41, the low pass filter 42, and the power monitors 51, 52 constitute a power detector of the present invention. By a series made of the photo detector 30, the band pass filter 41, and the power monitor 51, a bit rate frequency component power Pbr related to an output signal from the optical nonlinear element 20 can be measured, while by a series made of the photo detector 30, the low pass filter 42, and the power monitor 52, the direct current component power PDC related to an output signal from the optical nonlinear element 20 can be measured.
The control circuit 70 performs gain control of the variable amplifier (variable attenuator) 10 based on the bit rate frequency component power Pbr and the direct current component power PDC detected by the photo detector 30, the band pass filter 41, the low pass filter 42, and the power monitors 51, 52 as described above.
Here, the reproduction interconnection device in the second embodiment is the one to respond to an optical signal of the RZ format, and so the method of controlling the position of the cross point as in the first embodiment cannot be applied thereto.
In the second embodiment, an optimum input power to the optical nonlinear element 20 is considered to be a power with which a duty ratio of the outputted optical signal SOUT becomes a desirable value. As shown in
The control circuit 70 in the second embodiment judges whether or not the duty ratio of the outputted optical signal SOUT is the desired value by calculating the ratio of the bit rate frequency component power Pbr to the direct current component power PDC measured by the power monitors 51, 52 (Pbr/PDC). Hereby, the control circuit 70 performs waveform evaluation of the outputted optical signal SOUT and performs gain control of the variable amplifier (variable attenuator) 10.
More specifically, as shown in
In response to the comparative result, the control circuit 70 performs gain control of the variable amplifier (variable attenuator) 10 such that the power ratio becomes the one enabling the desired duty ratio. Then, the control circuit 70 controls such that the ratio of the measured bit rate frequency component power Pbr to the direct current component power PDC (Pbr/PDC) maintains a desired constant value.
According to the second embodiment, the bit rate frequency component power Pbr and the direct component power DPC are detected from the electrical signal SOUTA obtained by photoelectrically converting the optical signal SOUT after reproduction which is outputted from the optical nonlinear element 20. Then, in response to this detection result, more specifically, such that the power ratio (Pbr/PDC) calculated based on the detection result is maintained at the desired constant value, the control circuit 70 performs gain control of the variable amplifier (variable attenuator) 10, and the input power to the optical nonlinear element 20 is controlled.
Hereby, instead of directly measuring the inputted or outputted optical signal, waveform evaluation of the outputted optical signal SOUT is performed by the easy method, and the input power to the optical nonlinear element 20 can be easily set such that a good output waveform can be obtained. Therefore, it is possible to provide a reproduction interconnection device which is small and capable of performing good waveform-shaping for any inputted optical signal by a method which can be easily reduced in cost.
According to the present invention, evaluation of an output signal waveform is performed by detecting a power of a specific frequency component from an electrical signal obtained by converting an optical signal reproduced in an optical nonlinear element, and based on a result thereof, a gain of a variable amplifier is controlled. Hereby, an input power of the optical signal inputted to the optical nonlinear element can be easily set such that a good output waveform can be obtained, in response to the evaluation result of the output signal waveform. Therefore, it is possible to provide an optical transmission system which is small and capable of performing good signal reproduction for any inputted optical signal by a method which can be easily reduced in cost.
The present embodiments are to be considered in all respects as illustrative and no restrictive, and all changes which come within the meaning and range of equivalency of the claims are therefore intended to be embraced therein. The invention may be embodied in other specific forms without departing from the spirit or essential characteristics thereof.
Number | Date | Country | Kind |
---|---|---|---|
2006-098288 | Mar 2006 | JP | national |
Number | Name | Date | Kind |
---|---|---|---|
6717718 | Kelsoe et al. | Apr 2004 | B1 |
6859307 | Takeda et al. | Feb 2005 | B2 |
7027741 | Marutani et al. | Apr 2006 | B2 |
7072589 | Joergensen | Jul 2006 | B2 |
7076174 | Watanabe et al. | Jul 2006 | B2 |
20020041618 | Watanabe et al. | Apr 2002 | A1 |
20030156776 | Han et al. | Aug 2003 | A1 |
20040052534 | Joergensen | Mar 2004 | A1 |
20070104491 | Hainberger et al. | May 2007 | A1 |
Number | Date | Country |
---|---|---|
1 582 915 | Oct 2005 | EP |
2001-222037 | Aug 2001 | JP |
2002-44020 | Feb 2002 | JP |
3459213 | Oct 2003 | JP |
2004-173026 | Jun 2004 | JP |
Number | Date | Country | |
---|---|---|---|
20070230967 A1 | Oct 2007 | US |