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3D visualization of tomographic volume data using the generalized voxel model

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Abstract

Multi-slice images obtained from computer tomography and magnetic resonance imaging represent a 3D image volume. For its visualization we use a raycasting algorithm working on a gray-scale voxel data model. This model is extended by additional attributes such as membership to an organ or a second imaging modality (“generalized voxel model”). It is shown that the combination of different surface-rendering algorithms together with cutting and transparent display allow a realistic visualization of the human anatomy.

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References

  • Barillot C, Gibaud B, Luo LM, Scarabin IM (1985) 3-D Representation of anatomic structures from et examinations. Biostereometrics '85. Proc. SPIE 602:307–314

    Google Scholar 

  • Boecker FRP, Tiede U, Höhne KH (1985) Combined use of different algorithms for interactive surgical planning. In: Lemke U et al. (eds) Computer assisted radiology. Springer, Berlin Heidelberg New York, pp. 572–577

    Google Scholar 

  • Bomans M, Riemer M, Tiede U, Höhne KH (1987) 3-D Segmentation von Kernspintomogrammen. Ninth DAGM Meeting, Braunschweig. Informatik Fachberichte 149:231–235

    Google Scholar 

  • Bomans M, Höhne KH, Riemer M, Tiede U (1989) 3D-Segmentation of MR images of the head for 3D-display. IEEE Trans Med Imaging (in press)

  • Chen LS, Herman GT, Reynolds RA, Udupa JK (1985) Surface shading in the cuberille environment. Comput. Graph Appl. 5:33–43

    Google Scholar 

  • Goldwasser SM, Reynolds RA, Bapty T, Baraff D, Summers J, Talton DA, Walsh E (1985) Physicians workstation with real time performance. Comput Graph Appl 5:44–57

    Google Scholar 

  • Hemmy DC, David DJ, Herman GT (1983) Three-dimensional reconstruction of craniofacial deformity using computed tomography. Neurosurgery 13:534–541

    Google Scholar 

  • Herman GT, Vose WF, Gomori JM, Gefter WB (1985) Stereoscopic computed three-dimensional surface display. Radiographics 5:825–852

    Google Scholar 

  • Höhne KH, Bomans M, Tiede U, Riemer M (1988) Display of multiple 3-D-objects using the generalized voxel-model. Proc SPIE 914:850–854

    Google Scholar 

  • Höhne KH, DeLaPaz RL, Bernstein R, Taylor RC (1987) Combined surface display and reformatting for the 3D analysis of tomographic data. Invest Radiol 22:658–664

    Google Scholar 

  • Höhne KH, Bernstein R (1986) Shading 3D images from CT using gray level gradients. IEEE Trans Med Imaging 5:45–47

    Google Scholar 

  • Jackel D (1985) The graphics PARCUM system: a 3D memory based computer architecture for processing and display of solid objects. Computer Graphics Forum 4:21–32

    Google Scholar 

  • Kaufman A (1936) Voxel based architectures for three-dimensional graphics. Proc IFIP 86:361–366

    Google Scholar 

  • Lenz R, Danielsson PE, Cronström S, Gudmundson B (1986) Interactive display of 3D medical objects. In: Höhne KH (ed) Pictorial information systems in medicine. Springer. Berlin Heidelberg New York, pp. 449–468

    Google Scholar 

  • Levoy M (1988) Display of surface from volume data. IEEE Comput Graph and Appl 8:29–37

    Google Scholar 

  • Lorensen WE, Cline HE (1987) Marching cubes: A high resolution 3D surface construction algorithm. Computer Graphics 21:163–169

    Google Scholar 

  • Marr D, Hildreth EC (1980) Theory of edge detection. Proc R Soc Lond [B] 207:187–217

    Google Scholar 

  • Pommert A, Bomans M, Tiede U, Höhne KH (1989a) Image Quality in voxel-based Surface shading. In: Lemke HU et al (eds) Computer assisted radiology (Proc CAR '89). Springer, Berlin Heidelberg New York 737–741

    Google Scholar 

  • Pommert A, Bomans M, Tiede H, Höhne KH (1989b) Simulation studies for quality assurance of 3 D-images from computed tomograms. In: Todd-Pokropek A, Viergever MA (eds) The formation, handling and evaluation of medical images. (NATO ASI Series F Computer and Systems Sciences) Springer, Berlin Heidelberg New York (in press)

    Google Scholar 

  • Schiers C, Tiede U, Höhne KH (1989) Interactive 3 D registration of image volumes from different sources. In: Lemke HU et al. (eds), Computer assisted radiology. (Proc. CAR '89) Springer, Berlin Heidelberg New York, pp 666–670

    Google Scholar 

  • Templeton AW, Johnson JA, Anderson WH (1985) Computer graphics for digitally formatjed images. Radiology 152:527–528.

    Google Scholar 

  • Tiede U, Höhne KH, Riemer M (1987) Comparison of surface rendering techniques for 3D tomogaphic obiects. In: Lemke U et al. (ed) Computer assisted radiology. Springer, Berlin Heidelberg New York, pp. 599–610

    Google Scholar 

  • Tiede U, Riemer M, Bemans M, Höhne KH (1958) Display techniques for 3D-tomographie volume data. In Proc. NCGA '88, vol III. Anaheim, pp. 188–197

  • Vannier MW, Marsh JL, Warren J (1984) Three-dimensional CT reconstruction images for craniofacial surgical planning. Radiology 150:179–184

    Google Scholar 

  • Witte G, Höltje W, Tiede U, Riemer M (1986) Die dreidimensionale Derstellung computertomographischer Untersuchungen kraniofacialer Anomalien. Fortschr Röntgenstr 144:24–29

    Google Scholar 

  • Yasuda T, Toriwaki J, Yokoi S, Katada K (1984) Three-dimensional dispiay system of CT images for surgical planning. International Symposium on Medical Images and Icons, Silver Spring Md. IEEE Compauter Society, pp 322–327

  • Zucker SW, Hummel RA (1979) An optimal three-dimensional edge operator. McGill Univ Rep 79-10

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The investigations were supported in part by the Deutsche Forschungsgemeinschaft and the Werner Otto Foundation, Hamburg.

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Höhne, K.H., Bomans, M., Pommert, A. et al. 3D visualization of tomographic volume data using the generalized voxel model. The Visual Computer 6, 28–36 (1990). https://doi.org/10.1007/BF01902627

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