CONSTRUCTION METHOD OF MODE-DIVISION MULTIPLEXING FIBER-OPTIC COMMUNICATION SYSTEM AND A CONSTRUCTED FIBER-OPTIC COMMUNICATION SYSTEM
20190253176 ยท 2019-08-15
Assignee
Inventors
- Jie Liu (Guangdong, CN)
- Guoxuan Zhu (Guangdong, CN)
- Xiong Wu (Guangdong, CN)
- Yujie Chen (Guangdong, CN)
- Jiangbo Zhu (Guangdong, CN)
- Siyuan Yu (Guangdong, CN)
Cpc classification
H04B10/6164
ELECTRICITY
H04B10/614
ELECTRICITY
H04B10/6165
ELECTRICITY
H04L2025/03426
ELECTRICITY
International classification
Abstract
The present invention relates to a construction method of a mode-division multiplexing fiber-optic communication system, which includes following contents: converting multiple-input optical signals into optical propagation modes supported by a graded-index ring-core optical fiber at a transmitting end, after being multiplexed by a mode multiplexer, injecting the optical signals into the graded-index ring-core optical fiber for transmission; using a mode de-multiplexer to separate optical signals of different mode groups at a receiving end firstly; and for the separation of internal modes of the same mode group, adopting a multi-channel reception and a digital signal processing method based on a multiple-input multiple-output equalization for processing: for the separation of modes in a base mode group and a high-order mode group, using a digital signal processing algorithm including a 2?2 multiple-input multiple-output equalization and a digital signal processing algorithm including a 4?4 multiple-input multiple-output equalization for recovery processing, respectively. The method according to the present invention only needs to add an optical receiver and a digital signal processing module based on the 4?4 multiple-input multiple-output equalization repeatedly while adding the mode group to expand communication capacity. Compared with the prior art, the present invention has the characteristics of low complexity, high scalability and easy upgrading.
Claims
1. A construction method of a mode-division multiplexing fiber-optic communication system, the construction method comprises following contents: converting multiple-input optical signals into optical propagation modes supported by a graded-index ring-core optical fiber at a transmitting end, after being multiplexed by a mode multiplexer, injecting the optical signals into the graded-index ring-core optical fiber for transmission; using a mode de-multiplexer to separate different mode groups at a receiving end, then transmitting mode optical signals in each mode group to corresponding mode converters to be converted into Gaussian mode optical signals capable of supporting a single-mode optical fiber transmission which are then detected and received by coherent optical receivers to extract corresponding complex electrical signal; for a 2-way complex optical signal output after a base mode group or a zero-order mode group is received by the coherent optical receiver, using a digital signal processing algorithm including a 2?2 multiple-input multiple-output equalization for recovery processing; and for a 4-way complex optical signal output after a high-order mode group or a non-zero-order mode group is received by the coherent optical receiver, using a digital signal processing algorithm including a 4?4 multiple-input multiple-output equalization for recovery processing.
2. The construction method of the mode-division multiplexing fiber-optic communication system according to claim 1, wherein the modes included among the mode group that are injected into the graded-index ring-core optical fiber or received at the receiving end are any one of orbital angular momentum modes, linear polarization modes or graded-index ring-core optical fiber eigenmodes.
3. The construction method of the mode-division multiplexing fiber-optic communication system according to claim 1, wherein the digital signal processing algorithm including the 2?2 multiple-input multiple-output equalization comprises de-resampling and in-phase and quadrature (IQ) imbalance compensation, chromatic dispersion compensation, timing phase recovery, 2?2 multiple-input and multiple-output self-adaptive equalization, frequency offset estimation and compensation, carrier phase recovery, forward error correction, and signal demodulation and decision.
4. The construction method of the mode-division multiplexing fiber-optic communication system according to claim 1, wherein the digital signal processing algorithm including the 4?4 multiple-input multiple-output equalization comprises de-resampling and in-phase and quadrature (IQ) imbalance compensation, chromatic dispersion compensation, timing phase recovery, 4?4 multiple-input and multiple-output self-adaptive equalization, frequency offset estimation and compensation, carrier phase recovery, forward error correction, and signal demodulation and decision.
5. The construction method of the mode-division multiplexing fiber-optic communication system according to claim 1, wherein according to differences in a specific network environment and an optical fiber transmission distance, the digital signal processing algorithm including the 2?2 or 4?4 multiple-input multiple-output equalization is any one of a time-domain blind equalization algorithm, a frequency-domain blind equalization algorithm, a mixed time-domain and frequency-domain blind equalization algorithm, and a frequency domain equalization algorithm based on a training sequence; and according to a difference in a modulation format of a specific transmission signal, the digital signal processing algorithm including the 2?2 or 4?4 multiple-input multiple-output equalization is any one of a constant modulus algorithm, a cascade multi-mode algorithm, a radius guidance algorithm, or a least mean square algorithm.
6. A fiber-optic communication system constructed according to claim 1, comprising: a mode multiplexer, a graded-index ring-core optical fiber, a mode de-multiplexer, (2n+1) first mode converters, (2n+1) coherent optical receivers, a 2?2 digital signal processing module and a 4?4 digital signal processing module; n is the number of high-order mode groups or non-zero-order mode groups; wherein an output end of the mode multiplexer is connected with an input end of the graded-index ring-core optical fiber, an output end of the graded-index ring-core optical fiber is connected with an input end of the mode de-multiplexer, an output end of the mode de-multiplexer is connected with input ends of the (2n+1) first mode converters respectively, output ends of the (2n+1) first mode converters are connected with second input ends of the (2n+1) coherent optical receivers respectively, first input ends of the (2n+1) coherent optical receivers are connected with a local oscillator, output ends of the (2n+1) coherent optical receivers are connected with the 2?2 digital signal processing module or the 4?4 digital signal processing module.
7. The fiber-optic communication system according to claim 6, wherein the optical communication system further includes (2n+1) second mode converters and (2n+1) polarization division multiplexing optical transmitters, wherein output ends of the (2n+1) polarization division multiplexing optical transmitters are connected to input ends of the (2n+1) second mode converters respectively, and output ends of the (2n+1) second mode converters are connected to an input end of the mode multiplexer.
8. The fiber-optic communication system according to claim 6, wherein the number of the 2?2 digital signal processing modules is one, the number of the 4?4 digital signal processing modules is n; wherein an input end of the 2?2 digital signal processing module is connected with the output end of the coherent optical receiver corresponding to a base mode group or a zero-order mode group; and an input end of one 4?4 digital signal processing module is connected to the output end of the coherent optical receiver corresponding to one high-order mode group or non-zero-order mode group.
9. The fiber-optic communication system according to claim 6, wherein the 2?2 digital signal processing module includes a resampling and in-phase and quadrature (IQ) imbalance compensation sub-module, a chromatic dispersion compensation sub-module, a timing phase recovery sub-module, a 2?2 multiple input multiple output self-adaptive equalization sub-module, a frequency offset estimation and compensation sub-module, a carrier phase recovery sub-module, and a forward error correction and demodulation and decision sub-module, which are connected in turn.
10. The fiber-optic communication system according to claim 6, wherein the 4?4 digital signal processing module includes a resampling and in-phase and quadrature (IQ) imbalance compensation sub-module, a chromatic dispersion compensation sub-module, a timing phase recovery sub-module, a 4?4 multiple input multiple output self-adaptive equalization sub-module, a frequency offset estimation and compensation sub-module, a carrier phase recovery sub-module, and a forward error correction and demodulation and decision sub-module, which are connected in turn.
11. A fiber-optic communication system constructed according to claim 2, comprising: a mode multiplexer, a graded-index ring-core optical fiber, a mode de-multiplexer, (2n+1) first mode converters, (2n+1) coherent optical receivers, a 2?2 digital signal processing module and a 4?4 digital signal processing module; n is the number of high-order mode groups or non-zero-order mode groups; wherein an output end of the mode multiplexer is connected with an input end of the graded-index ring-core optical fiber, an output end of the graded-index ring-core optical fiber is connected with an input end of the mode de-multiplexer, an output end of the mode de-multiplexer is connected with input ends of the (2n+1) first mode converters respectively, output ends of the (2n+1) first mode converters are connected with second input ends of the (2n+1) coherent optical receivers respectively, first input ends of the (2n+1) coherent optical receivers are connected with a local oscillator, output ends of the (2n+1) coherent optical receivers are connected with the 2?2 digital signal processing module or the 4?4 digital signal processing module.
12. A fiber-optic communication system constructed according to claim 3, comprising: a mode multiplexer, a graded-index ring-core optical fiber, a mode de-multiplexer, (2n+1) first mode converters, (2n+1) coherent optical receivers, a 2?2 digital signal processing module and a 4?4 digital signal processing module; n is the number of high-order mode groups or non-zero-order mode groups; wherein an output end of the mode multiplexer is connected with an input end of the graded-index ring-core optical fiber, an output end of the graded-index ring-core optical fiber is connected with an input end of the mode de-multiplexer, an output end of the mode de-multiplexer is connected with input ends of the (2n+1) first mode converters respectively, output ends of the (2n+1) first mode converters are connected with second input ends of the (2n+1) coherent optical receivers respectively, first input ends of the (2n+1) coherent optical receivers are connected with a local oscillator, output ends of the (2n+1) coherent optical receivers are connected with the 2?2 digital signal processing module or the 4?4 digital signal processing module.
13. A fiber-optic communication system constructed according to claim 4, comprising: a mode multiplexer, a graded-index ring-core optical fiber, a mode de-multiplexer, (2n+1) first mode converters, (2n+1) coherent optical receivers, a 2?2 digital signal processing module and a 4?4 digital signal processing module; n is the number of high-order mode groups or non-zero-order mode groups; wherein an output end of the mode multiplexer is connected with an input end of the graded-index ring-core optical fiber, an output end of the graded-index ring-core optical fiber is connected with an input end of the mode de-multiplexer, an output end of the mode de-multiplexer is connected with input ends of the (2n+1) first mode converters respectively, output ends of the (2n+1) first mode converters are connected with second input ends of the (2n+1) coherent optical receivers respectively, first input ends of the (2n+1) coherent optical receivers are connected with a local oscillator, output ends of the (2n+1) coherent optical receivers are connected with the 2?2 digital signal processing module or the 4?4 digital signal processing module.
14. A fiber-optic communication system constructed according to claim 5, comprising: a mode multiplexer, a graded-index ring-core optical fiber, a mode de-multiplexer, (2n+1) first mode converters, (2n+1) coherent optical receivers, a 2?2 digital signal processing module and a 4?4 digital signal processing module; n is the number of high-order mode groups or non-zero-order mode groups; wherein an output end of the mode multiplexer is connected with an input end of the graded-index ring-core optical fiber, an output end of the graded-index ring-core optical fiber is connected with an input end of the mode de-multiplexer, an output end of the mode de-multiplexer is connected with input ends of the (2n+1) first mode converters respectively, output ends of the (2n+1) first mode converters are connected with second input ends of the (2n+1) coherent optical receivers respectively, first input ends of the (2n+1) coherent optical receivers are connected with a local oscillator, output ends of the (2n+1) coherent optical receivers are connected with the 2?2 digital signal processing module or the 4?4 digital signal processing module.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0013]
[0014]
[0015]
DETAILED DESCRIPTION OF THE EMBODIMENTS
[0016] The accompanying drawings are only for the purpose of illustration and are not to be construed as limiting the present invention;
[0017] The present invention is further described below in combination with the accompanying drawings and embodiments.
Embodiment 1
[0018] An orbital angular momentum (OAM) mode-division multiplexing fiber-optic communication is taken as an example, as shown in
[0019] multiple-input optical signals are converted into optical propagation modes supported by a graded-index ring-core optical fiber at a transmitting end, after being multiplexed by a mode multiplexer, the optical signals are injected into the graded-index ring-core optical fiber for transmission;
[0020] a mode de-multiplexer is used to separate different mode groups at a receiving end, then mode optical signals in each mode group are transmitted to corresponding mode converters to be converted into Gaussian mode optical signals capable of supporting a single-mode optical fiber transmission which are then detected and received by coherent optical receivers to extract corresponding complex electrical signals;
[0021] for a 2-way complex optical signal output after a base mode group or a zero-order mode group is received by the coherent optical receiver, a digital signal processing algorithm including a 2?2 multiple-input multiple-output equalization is used for recovery processing; and
[0022] for a 4-way complex optical signal output after a high-order mode group or non-zero-order mode group is received by the coherent optical receiver, a digital signal processing algorithm including a 4?4 multiple-input multiple-output equalization is used for recovery processing.
[0023] In particular, the modes included among the mode group that are injected into the graded-index ring-core optical fiber or received at the receiving end are any one of orbital angular momentum modes, linear polarization modes or graded-index ring-core optical fiber eigenmodes.
[0024] In a detailed implementation, as shown in
[0025] In a detailed implementation, as shown in
[0026] In a detailed implementation, according to differences in a specific network environment and an optical fiber transmission distance, the digital signal processing algorithm including the 2?2 or 4?4 multiple-input multiple-output equalization is any one of a time-domain blind equalization algorithm, a frequency-domain blind equalization algorithm, a mixed time-domain and frequency-domain blind equalization algorithm, and a frequency domain equalization algorithm based on a training sequence. According to a difference in a modulation format of a specific transmission signal, the digital signal processing algorithm including the 2?2 or 4?4 multiple-input multiple-output equalization is any one of a constant modulus algorithm, a cascade multi-mode algorithm, a radius guidance algorithm, or a least mean square algorithm.
Embodiment 2
[0027] An orbital angular momentum (OAM) mode-division multiplexing fiber-optic communication is taken as an example. The present embodiment provides a system applying the method in Embodiment 1. As shown in
[0028] the system includes a mode multiplexer, a graded-index ring-core optical fiber, a mode de-multiplexer, (2n+1) mode converters B, (2n+1) coherent optical receivers, a 2?2 digital signal processing module and a 4?4 digital signal processing module; and n is the number of high-order mode groups or non-zero-order mode groups;
[0029] wherein an output end of the mode multiplexer is connected with an input end of the graded-index ring-core optical fiber, an output end of the graded-index ring-core optical fiber is connected with an input end of the mode de-multiplexer, an output end of the mode de-multiplexer is connected with input ends of the (2n+1) mode converters B respectively, output ends of the (2n+1) mode converters B are connected with second input ends of the (2n+1) coherent optical receivers respectively, first input ends of the (2n+1) coherent optical receivers are connected with a local oscillator, output ends of the (2n+1) coherent optical receivers are connected with the 2?2 digital signal processing module or the 4?4 digital signal processing module.
[0030] In particular, a working process of the above system is as follows: multiple-input optical signals are converted into optical propagation modes supported by a graded-index ring-core optical fiber and after being multiplexed by a mode multiplexer, the optical signals are injected into the graded-index ring-core optical fiber for transmission; at a receiving end, a mode de-multiplexer is used to separate the received signals into (2n+1) different mode groups. After that, the modes in the (2n+1) different mode groups are transmitted respectively to the (2n+1) mode converters B to be converted into Gaussian mode optical signals capable of supporting a single-mode optical fiber transmission which are then received by the (2n+1) coherent optical receivers, the (2n+1) coherent optical receivers extracted corresponding complex electrical signals. For a 2-way complex optical signal output after a zero-order mode group is received by the coherent optical receiver, a digital signal processing algorithm including a 2?2 multiple-input multiple-output equalization is used for recovery processing; and for a 4-way complex optical signal output after a non-zero-order mode group is received by the coherent optical receiver, a digital signal processing algorithm including a 4?4 multiple-input multiple-output equalization is used for recovery processing.
[0031] In a detailed implementation, as shown in
[0032] In particular, the (2n+1) polarization division multiplexing optical transmitters are used to generate the multiple-input optical signal, and the (2n+1) mode converters A are used to convert the multiple-input optical signal into the optical propagation mode supported by the index-graded ring-core optical fiber.
[0033] In a detailed implementation, as shown in
[0034] In a detailed implementation, as shown in
[0035] In a detailed implementation, as shown in
[0036] Obviously, the above embodiments of the present invention are merely examples for clearly illustrating the present invention, and are not intended to limit the implementations of the present invention. For those of ordinary skill in the art, other different forms of changes or modifications may also be made based on the above description. There is no need or exhaustiveness for all the implementations to be illustrated herein. Any modification, equivalent replacement and improvement made within the spirit and principle of the present invention should be included in the scope of protection of the present invention.