A neural networks approach for designing compact all-optical photonic crystal based AND logic gate

Q3 Engineering Journal of Optical Communications Pub Date : 2023-12-06 DOI:10.1515/joc-2023-0328
Faribrz Parandin, Salah I. Yahya, Mehdi Rezaeenia, Asghar Askarian, S. Roshani, S. Roshani, Y. Ghadi, M. Jamshidi, Sahar Rezaee
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Abstract

Abstract This paper introduces a new method for creating an all-optical AND gate by utilizing a two-dimensional photonic crystal configuration for the first time. This gate design is intended for applications in optical computing and all-optical logic, offering the potential for rapid computation and parallel processing. The described gate is characterized by its compact dimensions and comprises two inputs and a single output. The high and low logic states are defined based on power values, where logic 0 corresponds to low power and logic 1 corresponds to high power emitted from the light source. To enhance the design process, artificial neural networks (ANNs) are utilized. ANNs offer a powerful tool for optimizing and fine-tuning the photonic crystal structure parameters to achieve the desired logic functionality. With the help of the applied ANNs, the design process is eased and high performance is achieved for the proposed photonic crystal structure. By integrating ANNs into the design process, this research opens up new possibilities for advancing the field of photonic logic circuits. Combining photonic crystals and ANN optimization provides a powerful approach to designing complex and efficient optical computing systems. The results show that the obtained power values are high for 1 logic state and low for the 0 logic state, which verifies the AND gate accuracy table. The achieved accurate results verify the validity of the proposed approach for achieving precise and reliable all-optical logic operations.
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设计基于全光学光子晶体的紧凑型 AND 逻辑门的神经网络方法
本文首次介绍了一种利用二维光子晶体构造全光与门的新方法。该栅极设计适用于光计算和全光逻辑,具有快速计算和并行处理的潜力。所述门的特点是其尺寸紧凑,并包括两个输入和一个输出。根据功率值定义高、低逻辑状态,其中逻辑0对应于光源发出的低功率,逻辑1对应于光源发出的高功率。为了提高设计过程,采用了人工神经网络(ann)。人工神经网络为优化和微调光子晶体结构参数以实现所需的逻辑功能提供了强大的工具。在应用人工神经网络的帮助下,简化了设计过程,并实现了高性能的光子晶体结构。通过将人工神经网络集成到设计过程中,本研究为推进光子逻辑电路领域开辟了新的可能性。光子晶体与神经网络优化的结合为设计复杂而高效的光学计算系统提供了强有力的途径。结果表明,在逻辑状态为1时得到的功率值较高,在逻辑状态为0时得到的功率值较低,验证了与门精度表。所获得的精确结果验证了该方法实现精确、可靠的全光逻辑运算的有效性。
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来源期刊
Journal of Optical Communications
Journal of Optical Communications Engineering-Electrical and Electronic Engineering
CiteScore
2.90
自引率
0.00%
发文量
86
期刊介绍: This is the journal for all scientists working in optical communications. Journal of Optical Communications was the first international publication covering all fields of optical communications with guided waves. It is the aim of the journal to serve all scientists engaged in optical communications as a comprehensive journal tailored to their needs and as a forum for their publications. The journal focuses on the main fields in optical communications
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