Concept for accelerated ray-based monostatic RCS simulations using bistatic approximations
An approach enabling accelerated shooting and bouncing rays (SBR) simulations to determine the backscattering properties of electrically large and complex objects is presented. Instead of performing independent simulations for all required aspect angles, the concept is based on the idea of additiona...
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Copernicus Publications
2009-05-01
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Series: | Advances in Radio Science |
Online Access: | http://www.adv-radio-sci.net/7/29/2009/ars-7-29-2009.pdf |
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doaj-e164b0763df54b148d731f37f40af3ba2020-11-24T23:32:19ZdeuCopernicus PublicationsAdvances in Radio Science 1684-99651684-99732009-05-0172935Concept for accelerated ray-based monostatic RCS simulations using bistatic approximationsH. BuddendickT. F. EibertAn approach enabling accelerated shooting and bouncing rays (SBR) simulations to determine the backscattering properties of electrically large and complex objects is presented. Instead of performing independent simulations for all required aspect angles, the concept is based on the idea of additionally exploiting bistatic information for some neighboring aspect angles. Therefore the results of the geometrical ray tracing, which consumes a large part of the computational resources in case of complex shaped objects can be reused multiple times with only low additional computational resources. <br><br> This method works well for objects with a sufficiently smooth shape and if a large number of aspect angles is to be simulated. A simple generic simulation example is used to show the general applicability of the method and to examine the degradation of the results depending on the applied bistatic angle. Furthermore, the acceleration that can be expected by the presented approach is determined and verified with the simulation example. http://www.adv-radio-sci.net/7/29/2009/ars-7-29-2009.pdf |
collection |
DOAJ |
language |
deu |
format |
Article |
sources |
DOAJ |
author |
H. Buddendick T. F. Eibert |
spellingShingle |
H. Buddendick T. F. Eibert Concept for accelerated ray-based monostatic RCS simulations using bistatic approximations Advances in Radio Science |
author_facet |
H. Buddendick T. F. Eibert |
author_sort |
H. Buddendick |
title |
Concept for accelerated ray-based monostatic RCS simulations using bistatic approximations |
title_short |
Concept for accelerated ray-based monostatic RCS simulations using bistatic approximations |
title_full |
Concept for accelerated ray-based monostatic RCS simulations using bistatic approximations |
title_fullStr |
Concept for accelerated ray-based monostatic RCS simulations using bistatic approximations |
title_full_unstemmed |
Concept for accelerated ray-based monostatic RCS simulations using bistatic approximations |
title_sort |
concept for accelerated ray-based monostatic rcs simulations using bistatic approximations |
publisher |
Copernicus Publications |
series |
Advances in Radio Science |
issn |
1684-9965 1684-9973 |
publishDate |
2009-05-01 |
description |
An approach enabling accelerated shooting and bouncing rays (SBR) simulations to determine the backscattering properties of electrically large and complex objects is presented. Instead of performing independent simulations for all required aspect angles, the concept is based on the idea of additionally exploiting bistatic information for some neighboring aspect angles. Therefore the results of the geometrical ray tracing, which consumes a large part of the computational resources in case of complex shaped objects can be reused multiple times with only low additional computational resources. <br><br> This method works well for objects with a sufficiently smooth shape and if a large number of aspect angles is to be simulated. A simple generic simulation example is used to show the general applicability of the method and to examine the degradation of the results depending on the applied bistatic angle. Furthermore, the acceleration that can be expected by the presented approach is determined and verified with the simulation example. |
url |
http://www.adv-radio-sci.net/7/29/2009/ars-7-29-2009.pdf |
work_keys_str_mv |
AT hbuddendick conceptforacceleratedraybasedmonostaticrcssimulationsusingbistaticapproximations AT tfeibert conceptforacceleratedraybasedmonostaticrcssimulationsusingbistaticapproximations |
_version_ |
1725534654711201792 |