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Abbas Ozgoli

Publications and source records attributed to Abbas Ozgoli.

2 recordsLinked to original sources

AI-Powered Inverse Design of Ku-Band SIW Resonant Structures by Iterative Residual Correction Network

Designing high-performance substrate-integrated waveguide (SIW) filters with both closely spaced and widely separated resonances is challenging. Consequently, there is a growing need for robust methods that reduce reliance on time-consuming electromagnetic (EM) simulations. In this study, a deep learning-based framework was developed and validated for the inverse design of multi-mode SIW filters with both closely spaced and widely separated resonances. A series of SIW filters were designed, fabricated, and experimentally evaluated. A three-stage deep learning framework was implemented, consisting of a Feedforward Inverse Model (FIM), a Hybrid Inverse-Forward Residual Refinement Network (HiFR\textsuperscript{2}-Net), and an Iterative Residual Correction Network (IRC-Net). The design methodology and performance of each model were systematically analyzed. Notably, IRC-Net outperformed both FIM and HiFR\textsuperscript{2}-Net, achieving systematic error reduction over five correction iterations. Experimental results showed a reduction in mean squared error (MSE) from 0.00191 to 0.00146 and mean absolute error (MAE) from 0.0262 to 0.0209, indicating improved accuracy and convergence. The proposed framework demonstrates the capability to enable robust, accurate, and generalizable inverse design of complex microwave filters with minimal simulation cost. This approach is expected to facilitate rapid prototyping of advanced filter designs and could extend to other high-frequency components in microwave and millimeter-wave technologies.

cs.LG

Multichannel joint-polarization-frequency-modulation encrypted metasurface in secure THz communication

Since the discovery of wireless telegraphy, wireless communication via electromagnetic (EM) signals has become a standard solution to meet the growing demand for information transfer in modern society. To prevent counterfeiting and manipulation by unauthorized individuals and agencies, it is crucial to innovate and enhance security through information encryption. In this paper, we introduce a metasurface that controls amplitude modulation at two different frequencies. Here, focusing on amplitude-frequency modulation for both x- and y- polarizations, we present an encrypted wireless communication protocol that using the chaos algorithm to secure the target data and prevent eavesdroppers from accessing it. The encrypted data is transmitted through the varying amplitudes at two different frequencies for both linear polarizations, achieved using two distinct graphene layers individually controlled by external biasing conditions. The extensive freedom enabled by simultaneous modulation of amplitude, frequency, and polarization allows information to be transmitted across diverse channels, thereby enhancing the security of encrypted information. The simulations demonstrate that encoding data, such as images, and transmitting it through amplitude-frequency modulation for both horizontal and vertical polarizations offer promising opportunities for various applications, including THz communications, anti-counterfeiting, THz data storage, and THz data transmission.

physics.optics