Intelligent structured light communication system based on fiber laser coherent array
Through the intelligent structured light communication system of the fiber laser coherent array, the trained spatial pattern recognition model is used for pattern demodulation, which solves the problem of the limited number of pattern demodulations in the fiber laser coherent array communication, achieves efficient communication efficiency and capacity improvement, and establishes a highly robust communication link.
Patent Information
- Application Number
- CN202411294583.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2024-09-14
- Publication Date
- 2025-09-16
- Estimated Expiration
- 2044-09-14
AI Technical Summary
Existing technologies in fiber laser coherent array communications have a limited number of mode demodulations, a complex system, and low transmission capacity and efficiency, making it difficult to achieve highly robust communication.
An intelligent structured light communication system based on a fiber laser coherent array is adopted, including an information encoding input module, a fiber laser coherent synthesis array module, a far-field spot image data acquisition module and a spatial pattern recognition module. The trained spatial pattern recognition model is used to perform orbital angular momentum multiplexing pattern recognition, and pattern demodulation is achieved through machine learning.
It improves the speed and accuracy of mode demodulation, enhances communication efficiency and capacity, establishes a highly robust communication link, and expands the application potential of free-space structured optical communications.
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Figure CN119232312B_ABST
Abstract
Description
Technical Field
[0001] The present invention belongs to the technical field of fiber laser coherent synthesis, and in particular relates to an intelligent structured light communication system based on a fiber laser coherent array. Background Art
[0002] Coherent arrays are a special form of phased array systems that can achieve high-power laser output through large-scale array structures. They have mature technologies for atmospheric turbulence suppression and pointing control, and have considerable application potential in long-distance deep-space communications. Furthermore, fiber laser coherent combining technology, with its flexible and controllable aperture array arrangement, can generate a new dimension of orbital angular momentum (OAM), which is beneficial for expanding transmission capacity and further focusing on the field of long-distance free-space structured optical communications.
[0003] Among them, multiplexing and demultiplexing technology is a key link in free-space structured optical communication. After the OAM light beam is multiplexed and transmitted, it usually needs to be demodulated at the receiving end to obtain the corresponding mode information. At this stage, mainstream solutions include spiral phase plates, diffractive optical elements, mode conversion methods, phase holograms, etc. However, traditional solutions have certain limitations in the number of modes demodulated, and the system is also relatively complex. Machine learning, as a new demultiplexing technology, has advantages in demodulation speed and accuracy, is low-cost, and can be commercialized.
[0004] Introducing intelligent solutions into the field of fiber laser coherent combining technology can further solve the problems of difficulty in extracting composite mode information, small transmission capacity and low transmission efficiency in existing technologies, which is conducive to building highly robust / high-dimensional communication links and expanding its application potential in the field of free-space structured optical communications. Summary of the Invention
[0005] In view of the defects and shortcomings in the prior art, the present invention discloses an intelligent structured light communication system based on a fiber laser coherent array.
[0006] In order to achieve the above technical objectives, the technical solution adopted by the present invention is:
[0007] The present invention provides an intelligent structured light communication system based on a fiber laser coherent array, comprising:
[0008] Information coding input module, used for inputting code element information;
[0009] A fiber laser coherent combining array module generates an array beam having an orbital angular momentum multiplexing pattern corresponding to the code element information according to the code element information;
[0010] A far-field spot image data acquisition module is used to acquire far-field spot image data of the array beam output by the fiber laser coherent array;
[0011] The spatial pattern recognition module inputs the far-field spot image data into the trained spatial pattern recognition model to perform orbital angular momentum multiplexing pattern recognition;
[0012] The information encoding output module is based on the identified orbital angular momentum multiplexing mode and outputs code element information corresponding to the orbital angular momentum multiplexing mode.
[0013] Preferably, the fiber laser coherent combining array module includes a fiber laser coherent combining optical path, and the fiber laser coherent combining optical path includes a seed source, a pre-amplifier, a fiber beam splitter, a phase modulator, a cascade fiber amplifier, and an adaptive fiber collimator array. The fiber beam splitter has multiple output ends. The seed laser output by the seed source is amplified by the pre-amplifier and then divided into multiple unit light beams after passing through the fiber beam splitter. Each output end of the fiber beam splitter is respectively connected to a phase modulator, a cascade fiber amplifier, and an adaptive fiber collimator. Multiple adaptive fiber collimators are arranged in a circular or regular polygonal array to form an adaptive fiber collimator array. The adaptive fiber collimator array includes m layers of adaptive fiber collimator annular sub-arrays from the inside to the outside. The number m of the annular sub-array ring layers determines that the fiber laser coherent combining array module can generate 2 m An array beam with an orbital angular momentum multiplexing mode.
[0014] Preferably, the training method of the spatial pattern recognition model includes:
[0015] Get 2 m Far-field spot image data corresponding to the array beam in the orbital angular momentum multiplexing mode and the corresponding phase information and amplitude information;
[0016] 2 m The pixel information of the far-field spot image data corresponding to the array beam of the orbital angular momentum multiplexing mode is encoded according to a certain encoding rule to obtain the code element information corresponding to the various orbital angular momentum multiplexing modes;
[0017] The far-field spot image data and the corresponding orbital angular momentum multiplexing mode code element information are used as training data, and the loss function is constructed as follows:
[0018]
[0019] The true label k real ={0,1,2,...,2 m -1}, represents the code element information of various orbital angular momentum multiplexing modes, k pred represents the predicted label; J(k real ,kpred ) represents the difference function, used to compare the true label k real and predicted label k pred the differences between; is the regularization term, γ represents the regularization parameter, is the optimization function related to θ;
[0020] When the loss function is minimized or reaches the set threshold, the model converges, and the model parameters θ that make the model converge are saved, the model training is completed, and a trained spatial pattern recognition model is obtained.
[0021] Preferably, the fiber laser coherent combining optical path controls the amplitude and phase of each unit light beam in the fiber laser coherent combining optical path according to the code element information, and generates an array light beam of an orbital angular momentum multiplexing mode corresponding to the code element information after coherent superposition.
[0022] Preferably, the fiber laser coherent combining array module includes a phase control unit, which performs signal processing by running a phase optimization control algorithm to generate a phase control signal corresponding to each unit light beam, and transmits it to the corresponding phase modulator to achieve phase control of each unit light beam.
[0023] Preferably, the present invention also includes a spectrometer, a focusing lens, and a photoelectric detection module. The array light beam output from the emission plane of the adaptive fiber collimator array is divided into two parts by the spectrometer, one part of which is transmitted to the far-field spot image data acquisition module through the focusing lens, and the other part is received by the photoelectric detection module and converted into an electrical signal and fed back to the phase control unit.
[0024] The phase optimization control algorithm described in the present invention is not limited, including but not limited to the random parallel gradient descent algorithm, simulated annealing algorithm or particle swarm optimization algorithm commonly used in the art.
[0025] Preferably, the array beam of the present invention comprises m layers of annular sub-arrays from the inside out, and each annular sub-array is composed of unit beams uniformly distributed along the angular direction, and the beam waist radius of each unit beam on each annular sub-array is w0, the wavelength is λ, the beam aperture is d, the output amplitude is A0, and the distance between the center of each unit beam on the i-th layer of annular sub-array and the center of the array beam is R i , i = 1, 2, 3, ..., m, wherein the mth annular sub-array is the outermost annular sub-array farthest from the center of the array beam. The specific form of the array beam is not limited, and can be a circular array beam or other regular polygonal array beam.
[0026] Based on the above technical solution, the present invention can produce the following technical effects:
[0027] The present invention trains a spatial pattern recognition model and uses the trained spatial pattern recognition model for recognizing the composite pattern of a fiber laser coherent array, exploring the feasibility of high-power fiber laser coherent combining technology in intelligent optical communication applications.
[0028] The trained spatial pattern recognition model can be used to accurately identify composite patterns in the presence of system errors and external interference, providing a technical basis for establishing a highly robust communication link based on fiber laser coherent arrays.
[0029] The present invention utilizes a trained spatial pattern recognition model to identify high-dimensional coding patterns of large-scale coherent arrays, which is beneficial to further improve communication efficiency and communication capacity. BRIEF DESCRIPTION OF THE DRAWINGS
[0030] In order to more clearly illustrate the embodiments of the present invention or the technical solutions in the prior art, the following briefly introduces the drawings required for use in the embodiments or the description of the prior art. Obviously, the drawings described below are only some embodiments of the present invention. For ordinary technicians in this field, other drawings can be obtained based on the structures shown in these drawings without paying any creative work.
[0031] Figure 1 1 is a schematic structural diagram of an intelligent structured light communication system based on a fiber laser coherent array according to an embodiment;
[0032] Figure 2 is a schematic diagram of a network structure of a spatial pattern recognition model in one embodiment;
[0033] Figure 3 This is a schematic diagram of a pattern recognition effect based on hexadecimal encoding in one embodiment;
[0034] Figure 4 This is a schematic diagram of image transmission based on hexadecimal encoding in one embodiment;
[0035] Numbers in the figure:
[0036] 1. Information encoding input module; 2. Seed source; 3. Pre-amplifier; 4. Fiber beam splitter; 5. Phase modulator; 6. Cascaded fiber amplifier; 7. Adaptive fiber collimator array; 8. Beam splitter; 9. Focusing lens; 10. Far-field spot image data acquisition module; 11. Spatial pattern recognition module; 12. Photoelectric detection module; 13. Phase control unit. DETAILED DESCRIPTION
[0037] The following will clearly and completely describe the technical solutions in the embodiments of the present invention in conjunction with the accompanying drawings. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. All other embodiments obtained by ordinary technicians in this field based on the embodiments of the present invention without making any creative efforts shall fall within the scope of protection of the present invention.
[0038] One embodiment provides an intelligent structured light communication system based on a fiber laser coherent array, comprising:
[0039] Information coding input module 1, used for inputting code element information;
[0040] A fiber laser coherent combining array module generates an array beam having an orbital angular momentum multiplexing pattern corresponding to the code element information according to the code element information;
[0041] A far-field spot image data acquisition module is used to acquire far-field spot image data of the array beam output by the fiber laser coherent array;
[0042] The spatial pattern recognition module inputs the far-field spot image data into the trained spatial pattern recognition model to perform orbital angular momentum multiplexing pattern recognition;
[0043] The information encoding output module is based on the identified orbital angular momentum multiplexing mode and outputs code element information corresponding to the orbital angular momentum multiplexing mode.
[0044] Reference Figure 1 , Figure 1 This is a schematic diagram of the structure of an intelligent structured light communication system based on a fiber laser coherent array according to one embodiment, comprising an information encoding input module 1, a fiber laser coherent combining array module, a far-field spot image data acquisition module 10, a spatial pattern recognition module 11, and an information encoding output module. The fiber laser coherent combining optical path controls the amplitude and phase of each unit beam in the fiber laser coherent combining optical path based on the code element information in the information encoding input module 1, and after coherent superposition, generates an array beam with an orbital angular momentum multiplexing pattern corresponding to the code element information.
[0045] The fiber laser coherent synthesis optical path in the fiber laser coherent synthesis array module includes a seed source 2, a pre-amplifier 3, a fiber beam splitter 4, a phase modulator 5, a cascade fiber amplifier 6, and an adaptive fiber collimator array 7. The fiber beam splitter 4 has multiple output ends. The seed laser output by the seed source 2 is amplified by the pre-amplifier 3 and then divided into multiple unit light beams after passing through the fiber beam splitter 4. Each output end of the fiber beam splitter 4 is respectively connected to a phase modulator 5, a cascade fiber amplifier 6, and an adaptive fiber collimator. Multiple adaptive fiber collimators are arranged in a circular or regular polygonal array to form an adaptive fiber collimator array 7. The adaptive fiber collimator array 7 includes m layers of adaptive fiber collimator annular sub-arrays from the inside to the outside. The number m of the annular sub-array ring layers determines that the fiber laser coherent synthesis array module can generate 2 m An array beam with an orbital angular momentum multiplexing mode.
[0046] The array beam includes m layers of annular sub-arrays from the inside to the outside. Each annular sub-array is composed of unit beams uniformly distributed along the angular direction. The waist radius of each unit beam on each annular sub-array is w0, the wavelength is λ, the beam diameter is d, the output amplitude is A0, and the distance between the center of each unit beam on the i-th layer of annular sub-array and the center of the array beam is R i , i = 1, 2, 3, ..., m, wherein the mth annular sub-array is the outermost annular sub-array farthest from the center of the array beam. The specific form of the array beam is not limited, and can be a circular array beam or other regular polygonal array beam.
[0047] The complex amplitude distribution of the array beam on the emission surface is expressed as:
[0048]
[0049] Where (x, y) is the coordinate on the emission surface, N i is the number of unit beams contained in the annular sub-array at the i-th layer, a total of N i beam unit beam; (a i,j , b i,j ) is the center coordinate of the j-th unit beam on the i-th ring sub-array, satisfying
[0050] is the piston phase of the j-th unit beam on the i-th ring subarray, satisfying: l i The orbital angular momentum of the vortex beam generated by the designated annular subarray at layer i, l1,l2,···,l n They are not equal to each other;
[0051] The complex amplitude distribution of the target plane in the spatial pattern recognition module is: E(x',y') = F{E(x,y)}; then the light intensity image obtained by the far-field spot image data acquisition module is: I = E(x',y') × E(x',y') * .
[0052] The array beam output from the emission plane of the adaptive fiber collimator array 7 is divided into two parts by a beam splitter 8, one part of which is transmitted to the far-field spot image data acquisition module 10 via a focusing lens 9, and the other part is received by the photoelectric detection module 12 and converted into an electrical signal and fed back to the phase control unit 13. The phase control unit 13 performs signal processing by running a phase optimization control algorithm to generate a phase control signal corresponding to each unit beam, and transmits it to the corresponding phase modulator 5 to achieve phase control of each unit beam. The phase optimization control algorithm is not limited, and includes but is not limited to the use of a stochastic parallel gradient descent algorithm, a simulated annealing algorithm, or a particle swarm optimization algorithm commonly used in the art.
[0053] The network structure of the spatial pattern recognition model in the present invention is not limited, and a convolutional neural network, a feedforward neural network or a deep diffraction neural network can be used. Figure 2 This is a schematic diagram of the network structure of the spatial pattern recognition model in one embodiment, and the ResNet-18 deep convolutional neural network structure used includes a series of convolutional layers.
[0054] Furthermore, an embodiment provides a method for training the spatial pattern recognition model, including:
[0055] Get 2 m Far-field spot image data corresponding to the array beam in the orbital angular momentum multiplexing mode and the corresponding phase information and amplitude information;
[0056] 2 m The pixel information of the far-field spot image data corresponding to the array beams in each orbital angular momentum multiplexing mode is encoded according to a certain encoding rule to obtain the code element information corresponding to each orbital angular momentum multiplexing mode. In this way, the phase and amplitude information of the array beams in the orbital angular momentum multiplexing mode are determined by the code element information.
[0057] The far-field spot image data and the corresponding orbital angular momentum multiplexing mode code element information are used as training data, and the loss function is constructed as follows:
[0058]
[0059] The true label k real ={0,1,2,...,2 m -1}, represents the code element information of various orbital angular momentum multiplexing modes, k pred represents the predicted label; J(kreal ,k pred ) represents the difference function, used to compare the true label k real and predicted label k pred the differences between; is the regularization term, γ represents the regularization parameter, is the optimization function related to θ;
[0060] When the loss function is minimized or reaches the set threshold, the model converges, and the model parameters θ that make the model converge are saved, the model training is completed, and a trained spatial pattern recognition model is obtained.
[0061] In a specific application example of an intelligent structured optical communication system based on a fiber laser coherent array, first, considering the implementation of hexadecimal encoding, a circular sub-array with four ring layers is required to participate in the mode multiplexing process. The circular sub-arrays of the second, fourth, sixth and eighth layers of the array beam are selected as the orbital angular momentum mode information carrying units. The complex amplitude distribution of the circular array beam on the emission surface is expressed as:
[0062]
[0063] Where (x, y) is the coordinate on the emission surface, and the number of unit beams included in the 2nd, 4th, 6th and 8th layers of the circular sub-arrays are 12, 24, 36 and 48 respectively; (a i,j , b i,j ) is the center coordinate of the j-th unit beam on the i-th layer of the circular sub-array, satisfying is the piston phase of the j-th unit beam on the i-th circular subarray, satisfying: l i The orbital angular momentum of the vortex beam generated by the designated i-th layer of the circular sub-array, l1,l2,···,l n They are not equal to each other; among them, l2=1, l4=3, l6=5, l8=7.
[0064] The complex amplitude distribution of the target plane in the spatial pattern recognition module is: E(x',y') = F{E(x,y)}; then the light intensity image obtained by the far-field spot image data acquisition module is: I = E(x',y') × E(x',y') * .
[0065] refer to Figure 3 In this example, the array light field is used to generate Figure 3 (a) shows a total of 16 modes, including the zero-light mode. The system was used to collect 16,000 spot images in real time, with 1,000 images collected for each encoder. 950 of these images were selected as the training set, and the remaining 50 as the test set. Figure 3(b) shows the confusion matrix showing the recognition effect of reused patterns in the test set, which shows that the predicted labels are consistent with the actual labels. Figure 3 (c) shows the accuracy curve of the network after 25 iterations of training. It can be seen that the curve finally reaches a convergence state.
[0066] refer to Figure 4 , is a schematic diagram of image transmission based on hexadecimal encoding in an embodiment. After encoding the image data to be transmitted, code element information is obtained. The pattern multiplexing information carrying the code element information is transmitted to the far-field spot image data acquisition module and input into the trained spatial pattern recognition model obtained above for recognition. Finally, code element information is obtained through data processing. The code element information is decoded to output image data. The results show that the accuracy of demodulating pattern information using the intelligent algorithm can reach 99.96%, and the bit error rate of the keyed communication link is 1.11×10 -5 .
[0067] Matters not covered by the present invention are known technologies.
[0068] The technical features of the above embodiments can be combined arbitrarily. To make the description concise, not all possible combinations of the technical features in the above embodiments are described. However, as long as there is no contradiction in the combination of these technical features, they should be considered to be within the scope of this specification.
[0069] The above-described embodiments merely represent several implementation methods of the present application. While the descriptions are relatively specific and detailed, they should not be construed as limiting the scope of the present invention. It should be noted that a person skilled in the art could make various modifications and improvements without departing from the spirit of the present application, all of which fall within the scope of protection of the present application. Therefore, the scope of protection of the present patent application shall be determined by the appended claims.
[0070] The foregoing description is merely a preferred embodiment of the present invention and is not intended to limit the present invention. Those skilled in the art will readily appreciate that the present invention is susceptible to various modifications and variations. Any modifications, equivalent substitutions, or improvements made within the spirit and principles of the present invention shall be included within the scope of protection of the present invention.
Claims
1. Intelligent structured light communication system based on fiber laser coherent array, characterized by: include: Information coding input module, used for inputting code element information; The fiber laser coherent synthesis array module generates an array beam with an orbital angular momentum multiplexing mode corresponding to the code element information according to the code element information. The fiber laser coherent synthesis array module includes a fiber laser coherent synthesis optical path. The fiber laser coherent synthesis optical path includes a seed source, a pre-amplifier, a fiber beam splitter, a phase modulator, a cascade fiber amplifier, and an adaptive fiber collimator array. The fiber beam splitter has multiple output ends. The seed laser output by the seed source is amplified by the pre-amplifier and then divided into multiple unit beams after passing through the fiber beam splitter. Each output end of the fiber beam splitter is respectively connected to a phase modulator, a cascade fiber amplifier, and an adaptive fiber collimator. Multiple adaptive fiber collimators are arranged in a circular or regular polygonal array to form an adaptive fiber collimator array. The adaptive fiber collimator array includes from the inside to the outside. m Layer adaptive fiber collimator ring subarray, the number of ring subarray layers m The fiber laser coherent combining array module is able to generate 2 m An array beam with an orbital angular momentum multiplexing mode; A far-field spot image data acquisition module is used to acquire far-field spot image data of the array beam output by the fiber laser coherent array; The spatial pattern recognition module inputs the far-field spot image data into a trained spatial pattern recognition model to perform orbital angular momentum multiplexing pattern recognition, wherein the training method of the spatial pattern recognition model includes: Get 2 m Far-field spot image data corresponding to the array beam in the orbital angular momentum multiplexing mode and the corresponding phase information and amplitude information; 2 m The pixel information of the far-field spot image data corresponding to the array beam of the orbital angular momentum multiplexing mode is encoded according to a certain encoding rule to obtain the code element information corresponding to the various orbital angular momentum multiplexing modes; The far-field spot image data and the corresponding orbital angular momentum multiplexing mode code element information are used as training data, and the loss function is constructed as follows: The true label , represents the code element information of various orbital angular momentum multiplexing modes, represents the predicted label; Represents the difference function, used to compare the true label and predicted labels the differences between; is the regularization term, represents the regularization parameter, is with Related optimization functions; When the loss function is minimized or reaches the set threshold, the model converges and the model parameters that make the model converge are saved. , complete the model training and obtain the trained spatial pattern recognition model; The information encoding output module is based on the identified orbital angular momentum multiplexing mode and outputs code element information corresponding to the orbital angular momentum multiplexing mode.
2. The intelligent structured light communication system based on fiber laser coherent array according to claim 1, characterized in that: The fiber laser coherent combining optical path controls the amplitude and phase of each unit light beam in the fiber laser coherent combining optical path according to the code element information, and generates an array light beam in an orbital angular momentum multiplexing mode corresponding to the code element information after coherent superposition.
3. The intelligent structured light communication system based on fiber laser coherent array according to claim 2, characterized in that: The fiber laser coherent combining array module includes a phase control unit, which performs signal processing by running a phase optimization control algorithm to generate a phase control signal corresponding to each unit beam and transmits it to the corresponding phase modulator to achieve phase control of each unit beam.
4. The intelligent structured light communication system based on fiber laser coherent array according to claim 3, characterized in that: It also includes a spectrometer, a focusing lens, and a photoelectric detection module. The array light beam output from the emission plane of the adaptive fiber collimator array is divided into two parts by the spectrometer. One part is transmitted to the far-field spot image data acquisition module through the focusing lens, and the other part is received by the photoelectric detection module and converted into an electrical signal and fed back to the phase control unit.
5. The intelligent structured light communication system based on fiber laser coherent array according to claim 3, characterized in that: The phase optimization control algorithm is a stochastic parallel gradient descent algorithm, a simulated annealing algorithm or a particle swarm optimization algorithm.
6. The intelligent structured light communication system based on a fiber laser coherent array according to any one of claims 1 to 5, characterized in that: The array beam contains from the inside out m Layer annular subarrays, each annular subarray is composed of unit beams uniformly distributed along the angular direction, and the waist radius of each unit beam on each annular subarray is , the wavelength is , the beam aperture is , the emission amplitude is , No. i The distance between the center of each unit beam and the center of the array beam on the layer ring sub-array is , , among which m The layer annular sub-array is the outermost annular sub-array farthest from the center of the array beam.
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