Adaptive Linearization for the Sub-Nyquist Photonic Receiver Based on Deep Learning
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Published:2022-10-25
Issue:11
Volume:9
Page:794
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ISSN:2304-6732
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Container-title:Photonics
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language:en
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Short-container-title:Photonics
Author:
Zhao Liyuan, Zhang Jianghua, Huang LeiORCID, Peng Yuanxi, Yin Ke, Zheng Xin, Zhang Zhuohang, Shen Meili, Song DenghuiORCID, Niu Hongxiao
Abstract
Due to the nonlinear and aliasing effects, the sub-Nyquist photonic receiver for radio frequency (RF) signals with large instantaneous bandwidth suffers limited dynamic range and noise performance. We designated a deep residual network (Resnet) to realize adaptive linearization across 40 GHz bandwidth. In contrast to conventional linearization methods, the deep learning method achieves the suppression of multifactorial spurious distortions and the noise floor simultaneously. It does not require an accurate calculation of the nonlinear transfer function or prior signal information. The experiments demonstrated that the proposed Resnet could improve the spur-free dynamic range (SFDR) and the signal-to-noise ratio (SNR) significantly by testing with single-tone signals, dual-tone signals, wireless communication signals, and modulated radar signals.
Funder
National Key R&D Program of China National Natural Science Foundation of China
Subject
Radiology, Nuclear Medicine and imaging,Instrumentation,Atomic and Molecular Physics, and Optics
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