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A non-parametric approach for modeling sensor behavior

  • N. Hirsenkorn
  • , T. Hanke
  • , A. Rauch
  • , B. Dehlink
  • , R. Rasshofer
  • , E. Biebl
  • Technische Universität München
  • BMW AG

Publikation: Beitrag in Buch/Bericht/KonferenzbandKonferenzbeitragBegutachtung

38 Zitate (Scopus)

Abstract

Realistic sensor models contribute to the progress of advanced driver assistance systems; off-line development is enabled and rare critical scenarios can be tested. In this paper a non-parametric (i.e., data driven) statistical framework is developed to reproduce sensor behavior. A detailed probability density function is constructed via kernel density estimation by exploiting measurements of an automotive radar system and a high-precision reference system. The approach is capable of inherently modeling sensor range, occlusion, latency, ghost objects, and object loss without explicit programming. Moreover, only few assumptions on the sensor properties are made; therefore, the technique is generic and can be applied to any object-list-generating sensor. The statistically equivalent implementation improvements presented herein render the approach real-time capable. Finally, the method is applied to an automotive radar system using test drives.

OriginalspracheEnglisch
TitelInternational Radar Symposium, IRS 2015 - Proceedings
Redakteure/-innenHermann Rohling, Hermann Rohling, Hermann Rohling
Herausgeber (Verlag)IEEE Computer Society
Seiten131-136
Seitenumfang6
ISBN (elektronisch)9783954048533, 9783954048533, 9783954048533
DOIs
PublikationsstatusVeröffentlicht - 26 Aug. 2015
Veranstaltung16th International Radar Symposium, IRS 2015 - Dresden, Deutschland
Dauer: 24 Juni 201526 Juni 2015

Publikationsreihe

NameProceedings International Radar Symposium
Band2015-August
ISSN (Print)2155-5753

Konferenz

Konferenz16th International Radar Symposium, IRS 2015
Land/GebietDeutschland
OrtDresden
Zeitraum24/06/1526/06/15

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