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DC poleHodnotaJazyk
dc.contributor.authorMolchanov, Vladimir
dc.contributor.authorLinsen, Lars
dc.contributor.editorSkala, Václav
dc.date.accessioned2019-05-10T07:54:34Z-
dc.date.available2019-05-10T07:54:34Z-
dc.date.issued2018
dc.identifier.citationWSCG 2018: full papers proceedings: 26th International Conference in Central Europe on Computer Graphics, Visualization and Computer Vision in co-operation with EUROGRAPHICS Association, p. 20-29.en
dc.identifier.isbn978-80-86943-40-4
dc.identifier.issn2464–4617 (print)
dc.identifier.issn2464–4625 (CD-ROM)
dc.identifier.uriwscg.zcu.cz/WSCG2018/!!_CSRN-2801.pdf
dc.identifier.urihttp://hdl.handle.net/11025/34621
dc.description.abstractA stream function is an implicit flow representation in form of a function, whose values are constant along streamlines of the underlying velocity field. To generate a stream function, a common approach is to use a streamline tracking technique after assigning scalar function values on the inflow/outflow domain boundary (pre-processing step). However, non-trivial flows generally have streamlines that do not start or end at the domain boundary. We propose an automatic approach that defines a stream function along such streamlines. To do so, we construct optimal termination surfaces inside the domain and assign scalar values to all streamlines crossing these surfaces. Furthermore, we propose a proper functional to characterize the quality of the approximated stream function. Using a variational approach, we derive a partial differential equation for the minimization of the derived functional. This minimization procedure is an effective tool to improve the stream function. It can also be used to significantly improve the pre-computation times by creating a high-quality high-resolution stream function from a low-resolution estimate. Once the implicit flow representation is established and improved, we can efficiently extract flow geometry such as stream ribbons, stream tubes, stream surfaces, etc. by applying fast marching algorithms. Tracking time recorded during the pre-processing step can be coupled with the stream function or used directly to extract time surfaces. Thus, the entire flow field can be explored interactively. There is no need for time-consuming particle tracking and mesh refinement during the visual exploration process.en
dc.format10 s.cs
dc.format.mimetypeapplication/pdf
dc.language.isoenen
dc.publisherVáclav Skala - UNION Agencycs
dc.rights© Václav Skala - UNION Agencyen
dc.subjectvizualizace průtokucs
dc.subjectproudnicecs
dc.subjectpovrchycs
dc.subjectimplicitní reprezentacecs
dc.subjectfunkce tokucs
dc.titleGeneration of implicit flow representations for interactive visual exploration of flow fieldsen
dc.typekonferenční příspěvekcs
dc.typeconferenceObjecten
dc.rights.accessopenAccessen
dc.type.versionpublishedVersionen
dc.subject.translatedflow visualizationen
dc.subject.translatedstreamlinesen
dc.subject.translatedsurfacesen
dc.subject.translatedimplicit representationen
dc.subject.translatedstream functionen
dc.identifier.doihttps://doi.org/10.24132/CSRN.2018.2801.3
dc.type.statusPeer-revieweden
Vyskytuje se v kolekcích:WSCG 2018: Full Papers Proceedings

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