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Tytuł artykułu

Radio Vision Systems Ensuring Movement Safety for Ground, Airborne and Sea Vehicles

Treść / Zawartość
Identyfikatory
Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
This article presents the features of an all-weather radio vision system (RVS) ensuring the safety of movement of ground, airborne and sea vehicles and automation of vehicle traffic control under limited or non-existent visibility conditions. New and promising RVS applications in the aviation and rail transport sectors are presented. The potential use of RVS based on an interferometric radar with aperture synthesis, capable of estimating the position of ice fields and the height of icebergs is considered as well.
Rocznik
Tom
Strony
54--63
Opis fizyczny
Bibliogr. 18 poz., rys., tab., fot.
Twórcy
autor
  • Moscow Aviation Institute (National Research University), 4, Volokolamskoye shosse, 125993, Moscow, Russia
  • Moscow Aviation Institute (National Research University), 4, Volokolamskoye shosse, 125993, Moscow, Russia
autor
  • Moscow Aviation Institute (National Research University), 4, Volokolamskoye shosse, 125993, Moscow, Russia
  • Moscow Aviation Institute (National Research University), 4, Volokolamskoye shosse, 125993, Moscow, Russia
autor
  • Moscow Aviation Institute (National Research University), 4, Volokolamskoye shosse, 125993, Moscow, Russia
Bibliografia
  • [1] Traffic Safety Facts Research Note NHTSA HS 812101, “2013 Motor Crashes: Overview", Dec. 2014 [Online]. Available: https://crashstats.nhtsa.dot.gov/Api/Public/ViewPublication/812101
  • [2] Y. Asano, S. Ohshima, M. Ogawa, and K. Nishikawa, “Proposal of millimeter -wave holographic radar with antenna switching", in Proc. IEEE MTT-S Int. Microw. Symp. Digest, Phoenix, AZ, USA, 2001 (doi: 10.1109/MWSYM.2001.967086).
  • [3] M. Chiaberge (Ed.), New Trends and Developments in Automotive System Engineering. Intech, 2011 (doi:10.5772/552, ISBN: 9789533075174)
  • [4] Maria S. Greco, “Automotive radar", in IEEE Radar Conf. RADAR 2012, Atlanta, USA, 2012 [Online]. Available: http://www.iet.unipi.it/m.greco/esamilab/Radar/automotiveradar.pdf
  • [5] K. Shirakawa, S. Kobashi, Y. Kurono, M. Shono, and O. Osamuisaj, “3D-scan millimeter-wave radar for automotive application", Fujitsu TEN Tech. J., no. 38, pp. 3-7, 2013.
  • [6] L. Stanislas and T. Peynot, “Characterizati on of the Delphi Electronically canning Radar for robotics applications", in Proc. of Australasian Conf. on Robot. and Autom. ACRA 2015, Canberra, Australia, 2015, pp. 434-443.
  • [7] M. Kishida, K. Ohguchi, and M. Shono, “79 GHz band high-resolutions millimeter -wave radar", Fujitsu Scient. and Tech. J., vol. 51, no. 4, pp. 55-59, 2015.
  • [8] “Implementing digital processing for automotive radar using SoC FPG As", White Paper , no. WP-01183-1.2, Altera Corp., 2013.
  • [9] C. Waldschmitt and H. Meinel, “Future trends and directions in radar concerning The application for autonomous driving", in Proc. of the 11th Eur. Radar Conf. EuRAD 2014, Rome, Italy, 2014, pp. 416-419 (doi: 10.1109/EuRAD.2014.6991296).
  • [10] A. E. Ananenkov et al., “MM range ARVS as a means of investigating into the objects of natural and and artificial origin", Elektronika i Informatika, no. 4, 2002 [in Russian].
  • [11] A. E. Ananenkov, A. V. Karpyshev, V. M. Nuzhdin, V. V. Rastorguev, V. B. Shnaider, and G. A. Morozov, “Microwave distance sensor of the helicopter fire fighting system", Russian Aeronautics, vol. 57, no. 4, pp. 406-411, 2014 (doi:103103/S1068799814040151).
  • [12] A. E. Ananenkov, A. V. Konovaltsev, V. M. Nuzhdin, V. V. Rastorguev, and P. V. Sokolov, “Optical data-bus and microwave systems for automotive application in vehicles, airplanes and ships ", in Optical and Microwave Technologies for Telecommunication Networks, O. Strobel, Ed. Wiley, 2016 (ISBN: 9781119971900).
  • [13] Y. V. Likharev, V. M. Nuzhdin, P. V. Sokolov, V. I. Akhrameev, and M. C. Shelagurova, “Determining actual aircraft positions relative to the runway using the airborne radar and approach navigation", Int. J. of Control Theory and Appl., vol. 9, no. 30, pp. 83-93, 2016.
  • [14] A. Ananenkov, Y. Likharev, V. Rastorguev, and P. Sokolov, “Research of opportunities of short-range radar to prevent flight accidents", in Proc. of 18th Int. Conf. on Transparent Opt. Netw. ICTON 2016, Trento, Italy, 2016 (doi:10.1109/ICTON.2016.7550247).
  • [15] “All weather radar IDS-76", DOK Company, 2002-02018 [Online]. Available: http://dokltd.ru/products/a20192
  • [16] A. E. Ananenkov, A. I. Kanashchenkov, V. M. Nuzhdin, V. V. Rastorguev, and A. M. Smolyar, “Estimation of potential characteristics of onboard radar for ice surface monitoring", in Proc. of 19th Int. Conf. on Transparent Opt. Netw. ICTON 2017, Girona, Spain, 2017 (doi: 10.1109/ICTON.2017.8025027).
  • [17] M. I. Skolnik (Ed.), Radar Handbook, 3rd Ed. McGraw-Hill, 2008 (ISBN:9780071485470).
  • [18] A. E. Ananenkov, A. V. Konovaltsev, V. M. Nuzhdin, V. V. Rastorguev, and P. V. Sokolov, “Homodyne radar", patent no. RU2626405, Russia, 27/07/2017.
Uwagi
Opracowanie rekordu w ramach umowy 509/P-DUN/2018 ze środków MNiSW przeznaczonych na działalność upowszechniającą naukę (2019).
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-99646160-96c7-4508-887a-247cd220fd95
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