Highly efficient frequency modulated continuous wave based photonic radar by incorporating electronic equalization scheme

Malhotra, J., Sharma, A., Khichar, S., Parnianifard, A. and Chaudhary, S. (2023) Highly efficient frequency modulated continuous wave based photonic radar by incorporating electronic equalization scheme. Optical and Quantum Electronics, 55(9), 797. (doi: 10.1007/s11082-023-05104-0)

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Abstract

Detecting and tracking multiple targets in real-time poses a significant challenge for autonomous vehicles (AV’s), especially in urban areas with unfavourable weather conditions. Photonic radars have emerged as a promising technology for addressing this challenge and enabling autonomous vehicles to recognize traffic patterns, navigate, detect lanes, and park themselves. For this investigation, we developed a photonic radar system based on direct detection configuration that uses frequency-modulated continuous wave (FMCW) and three different transmission channels. These channels are multiplexed and transmitted through a single free space channel using wavelength division multiplexing (WDM) to detect multiple stationary targets. To combat the effects of atmospheric attenuation, we utilized electronic equalization as a mitigation technique. We evaluated the performance of our proposed photonic radar system with and without equalization in unfavourable climatic disorders such as rain and fog. Our results, which measured received power and signal-to-noise ratio (SNR), demonstrate that the received power increases by up to 54% with electronic equalization, and all targets are successfully detected even in the presence of heavy attenuation of 75 dB/km, up to a range of 500 m.

Item Type:Articles
Status:Published
Refereed:Yes
Glasgow Author(s) Enlighten ID:Parnianifard, Dr Amir
Authors: Malhotra, J., Sharma, A., Khichar, S., Parnianifard, A., and Chaudhary, S.
College/School:College of Science and Engineering > School of Engineering
Journal Name:Optical and Quantum Electronics
Publisher:Springer
ISSN:0306-8919
ISSN (Online):1572-817X
Published Online:30 June 2023
Copyright Holders:Copyright © The Author(s), under exclusive licence to Springer Science+Business Media, LLC, part of Springer Nature 2023
First Published:First published in Optical and Quantum Electronics 55(9):797
Publisher Policy:Reproduced in accordance with the publisher copyright policy

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