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Optical Encoding Model Based on Orbital Angular Momentum Powered by Machine Learning

delete2023-03-02
delete10
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OA
AI
E
Erick Lamilla *
C
Christian Sacarelo
M
Manuel S. Alvarez‐Alvarado
A
Arturo Pazmiño
P
Peter Iza
DOI:10.3390/s23052755delete
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Abstract

Abstract

En 中文
Based on orbital angular momentum (OAM) properties of Laguerre-Gaussian beams LG(p,l), a robust optical encoding model for efficient data transmission applications is designed. This paper presents an optical encoding model based on an intensity profile generated by a coherent superposition of two OAM-carrying Laguerre-Gaussian modes and a machine learning detection method. In the encoding process, the intensity profile for data encoding is generated based on the selection of p and l indices, while the decoding process is performed using a support vector machine (SVM) algorithm. Two different decoding models based on an SVM algorithm are tested to verify the robustness of the optical encoding model, finding a BER =10(-9) for 10.2 dB of signal-to-noise ratio in one of the SVM models.
Keywords:
machine learning
LG-beams
OAM-beams
optical encoding model
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Journal

Sensors cover
Sensors
IF:
3.5
Papers:
7.1W
Citations:
20.9W

Organization

Escuela Superior Politecnica del Litoral cover
Escuela Superior Politecnica del Litoral
Scholars:
1.3K
Papers: 754
Citations: 872