Visibility driven visualization of 3D cardiac ultrasound data on the GPU

被引:1
|
作者
Bronstad, Espen Stene [1 ]
Asen, Jon Petter [1 ]
Torp, Hans G. [1 ]
Kiss, Gabriel [1 ]
机构
[1] Norwegian Univ Sci & Technol, Dept Phys, N-7034 Trondheim, Norway
关键词
D O I
10.1109/ULTSYM.2012.0664
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
Direct volume rendering (DVR) has become a widely used technique for visualizing anatomical structures in medical 3D datasets The aim of this study was to locally adapt the opacity transfer function (OTF) in order to improve the results achieved when rendering 3D echocardiographic datasets using DVR. A novel approach for defining locally adaptive OTFs has been tested and adapted to echo data and implemented on the GPU. The local OTF is modeled as a truncated second order polynomial. The algorithm locates significant transitions along the ray profile (feature detection along the ray) in order to estimate an opacity threshold (below which all values are considered transparent) and the steepness of the polynomial for each ray. A reference global OTF and the locally adaptive algorithm have been implemented on a GPU using OpenCL and tested on a dataset of nine 3D echo recordings. The rendering resolution is 512x512x300, while average timing is 28ms, 104ms for the reference and the new method respectively. The locally adaptive OTFs were able to compensate for high variations in tissue (and such reducing wall drop-outs) and blood pool signal (reducing spurious structures inside the cavity). The method depends on a number of user defined parameters, determining these values robustly is subject of ongoing research.
引用
收藏
页码:2651 / 2654
页数:4
相关论文
共 50 条
  • [31] GPU-Based Visualization and Synchronization of 4-D Cardiac MR and Ultrasound Images
    Zhang, Qi
    Eagleson, Roy
    Peters, Terry M.
    IEEE TRANSACTIONS ON INFORMATION TECHNOLOGY IN BIOMEDICINE, 2012, 16 (05): : 878 - 890
  • [32] Solid object visualization of patient anatomy derived from 3D ultrasound data
    Nelson, T.
    Bailey, M.
    Ultrasound in Medicine and Biology, 2000, 26 (SUPPL. 2):
  • [33] 3D visualization of vertebra by freehand ultrasound scanning
    Yasumuro, Y
    Imura, M
    Manabe, Y
    Chihara, K
    PROCEEDINGS OF THE FIFTH IASTED INTERNATIONAL CONFERENCE ON VISUALIZATION, IMAGING, AND IMAGE PROCESSING, 2005, : 115 - 120
  • [34] GPU-BASED FRAMEWORK FOR DISTRIBUTED INTERACTIVE 3D VISUALIZATION OF MULTIMODAL REMOTE SENSING DATA
    Lambers, Martin
    Kolb, Andreas
    2009 IEEE INTERNATIONAL GEOSCIENCE AND REMOTE SENSING SYMPOSIUM, VOLS 1-5, 2009, : 2437 - 2440
  • [35] The visibility octree:: a data structure for 3D navigation
    Saona-Vázquez, C
    Navazo, I
    Brunet, P
    COMPUTERS & GRAPHICS-UK, 1999, 23 (05): : 635 - 643
  • [36] Networking of 3D ultrasound data
    Nelson, T.
    Ultrasound in Medicine and Biology, 2000, 26 (SUPPL. 2):
  • [37] Simplification of Moving 3D Scene Data on GPU
    Chenchu, Rajesh
    Michiels, Nick
    Rogmans, Sammy
    Bekaert, Philippe
    SIGMAP: PROCEEDINGS OF THE 13TH INTERNATIONAL JOINT CONFERENCE ON E-BUSINESS AND TELECOMMUNICATIONS - VOL. 5, 2016, : 95 - 98
  • [38] Improving the 3D Visualization of the Visible Korean Human via Data Driven 3D Segmentation in RGB Color Space
    Riemer, M.
    Park, J. S.
    Chung, M. S.
    Handels, H.
    WORLD CONGRESS ON MEDICAL PHYSICS AND BIOMEDICAL ENGINEERING 2006, VOL 14, PTS 1-6, 2007, 14 : 4200 - +
  • [39] Immersive 3D Visualization of Astronomical Data
    Schaaff, A.
    Berthier, J.
    Da Rocha, J.
    Deparis, N.
    Derriere, S.
    Gaultier, P.
    Houpin, R.
    Normand, J.
    Ocvirk, P.
    ASTRONOMICAL DATA ANALYSIS SOFTWARE AND SYSTEMS: XXIV, 2015, 495 : 125 - 128
  • [40] Visualization of 3D Hydrogeological Data in the Web
    Kmoch, Alexander
    Klug, Hermann
    GI FORUM 2014: GEOSPATIAL INNOVATION FOR SOCIETY, 2014, : 16 - 24