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  4. Performance Analysis and Design of a Distributed Radar Network for Automotive Application
 
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2022
Conference Paper
Title

Performance Analysis and Design of a Distributed Radar Network for Automotive Application

Abstract
This work deals with the problem of joint direction-of-arrival (DoA) estimation in a network of forward-facing automotive radars with partially overlapping fields of view (FOVs). Assuming monostatic operation, we show performance improvements achieved by using block-sparse reconstruction and array optimization compared to individual estimation with ad-hoc array designs. For a preexisting network consisting of two symmetric corner-mounted radars, we investigate the benefits of adding a third central sparse array optimized for joint operation with the corner-mounted sensors. Simulations show that adding a very-sparse central sensor explicitly designed to achieve sidelobe-cancellation with the supporting corner-mounted sensors significantly improves angular resolution without increasing the number of false alarms in the network.
Author(s)
Correas Serrano, Aitor  
Fraunhofer-Institut für Hochfrequenzphysik und Radartechnik FHR  
Gonzalez Huici, Maria Antonia  
Fraunhofer-Institut für Hochfrequenzphysik und Radartechnik FHR  
Simoni, Renato  
Fraunhofer-Institut für Hochfrequenzphysik und Radartechnik FHR  
Bredderman, Tobias
Warsitz, Ernst
Müller, Thomas
Kirsch, Oliver
Mainwork
23rd International Radar Symposium, IRS 2022  
Conference
International Radar Symposium 2022  
DOI
10.23919/IRS54158.2022.9904987
Language
English
Fraunhofer-Institut für Hochfrequenzphysik und Radartechnik FHR  
Keyword(s)
  • array design

  • Automotive radar

  • Compressed Sensing

  • DoA estimation

  • group sparsity

  • MIMO radar

  • Orthogonal Matching Pursuit

  • radar networks

  • sidelobe cancellation

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