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Voxlines: Streamline Transparency Through Voxelization and View-Dependent Line Orders

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Abstract

As tractography datasets continue to grow in size, there is a need for improved visualization methods that can capture structural patterns occurring in large tractography datasets. Transparency is an increasingly important aspect of finding these patterns in large datasets but is inaccessible to tractography due to performance limitations. In this paper, we propose a rendering method that achieves performant rendering of transparent streamlines, allowing for exploration of deeper brain structures interactively. The method achieves this through a novel approximate order-independent transparency method that utilizes voxelization and caching view-dependent line orders per voxel. We compare our transparency method with existing tractography visualization software in terms of performance and the ability to capture deeper structures in the dataset.

Original languageEnglish
Title of host publicationComputational Diffusion MRI
Subtitle of host publication14th International Workshop, CDMRI 2023, Held in Conjunction with MICCAI 2023, Vancouver, BC, Canada, October 8, 2023, Proceedings
EditorsMuge Karaman, Remika Mito, Elizabeth Powell, Francois Rheault, Stefan Winzeck
Place of PublicationCham
PublisherSpringer
Pages92-103
Number of pages12
ISBN (Electronic)978-3-031-47292-3
ISBN (Print)978-3-031-47291-6
DOIs
Publication statusPublished - 7 Feb 2024
Event14th International Workshop on Computational Diffusion MRI, CDMRI 2023 - Vancouver, Canada
Duration: 8 Oct 20238 Oct 2023

Publication series

NameLecture Notes in Computer Science (LNCS)
Volume14328
ISSN (Print)0302-9743
ISSN (Electronic)1611-3349

Workshop

Workshop14th International Workshop on Computational Diffusion MRI, CDMRI 2023
Abbreviated titleCDMRI 2023
Country/TerritoryCanada
CityVancouver
Period8/10/238/10/23

Keywords

  • Streamlines
  • Tractography
  • Transparency
  • Visualization

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