Metaballs-based physical modeling and deformation of organs for virtual surgery
Gespeichert in:
Verfasser / Beitragende:
[Junjun Pan, Chengkai Zhao, Xin Zhao, Aimin Hao, Hong Qin]
Ort, Verlag, Jahr:
2015
Enthalten in:
The Visual Computer, 31/6-8(2015-06-01), 947-957
Format:
Artikel (online)
Online Zugang:
| LEADER | caa a22 4500 | ||
|---|---|---|---|
| 001 | 605540977 | ||
| 003 | CHVBK | ||
| 005 | 20210128100914.0 | ||
| 007 | cr unu---uuuuu | ||
| 008 | 210128e20150601xx s 000 0 eng | ||
| 024 | 7 | 0 | |a 10.1007/s00371-015-1106-y |2 doi |
| 035 | |a (NATIONALLICENCE)springer-10.1007/s00371-015-1106-y | ||
| 245 | 0 | 0 | |a Metaballs-based physical modeling and deformation of organs for virtual surgery |h [Elektronische Daten] |c [Junjun Pan, Chengkai Zhao, Xin Zhao, Aimin Hao, Hong Qin] |
| 520 | 3 | |a Prior research on metaballs-based modeling solely focuses on shape geometry and its processing for organic objects. This paper takes a different approach by exploring a new metaballs-based physical modeling method for digital organs that are imperative to support virtual surgery. We propose a novel hybrid physical model comprising both surface mesh and the metaballs which occupy organs' interior. The finer surface mesh with high-precision geometric information and texture is necessary to represent the boundary structure of organs. Through the use of metaballs, the organ interior is geometrically simplified via a set of overlapping spheres with different radii. This work's novelty hinges upon the integration of metaballs and position-based dynamics (PBD) which enables metaballs-based organs to serve as physical models and participate in dynamic simulation. For the metaballs construction, we develop an adaptive approach based on Voronoi Diagram for model initialization. Using global optimization, an electrostatic attraction model is proposed to drive the metaballs to best match with the organ's boundary. Using PBD, we devise a novel metaballs-based deformation algorithm, which preserves two local shape properties via constraints on Laplacian coordinates and local volume. To retain the organ's smooth deformation, we propose a new skinning method based on distance field, and it is employed to build the mapping between the metaballs and organ boundary. This metaballs-based deformation technique has already been integrated into a VR-based laparoscopic surgery simulator. | |
| 540 | |a Springer-Verlag Berlin Heidelberg, 2015 | ||
| 690 | 7 | |a Metaballs |2 nationallicence | |
| 690 | 7 | |a Optimization |2 nationallicence | |
| 690 | 7 | |a Organ |2 nationallicence | |
| 690 | 7 | |a Deformation |2 nationallicence | |
| 690 | 7 | |a Skinning |2 nationallicence | |
| 700 | 1 | |a Pan |D Junjun |u State Key Laboratory of Virtual Reality Technology and Systems, Beihang University, 100191, Beijing, China |4 aut | |
| 700 | 1 | |a Zhao |D Chengkai |u State Key Laboratory of Virtual Reality Technology and Systems, Beihang University, 100191, Beijing, China |4 aut | |
| 700 | 1 | |a Zhao |D Xin |u State Key Laboratory of Virtual Reality Technology and Systems, Beihang University, 100191, Beijing, China |4 aut | |
| 700 | 1 | |a Hao |D Aimin |u State Key Laboratory of Virtual Reality Technology and Systems, Beihang University, 100191, Beijing, China |4 aut | |
| 700 | 1 | |a Qin |D Hong |u Department of Computer Science, Stony Brook University (SUNY Stony Brook), New York, USA |4 aut | |
| 773 | 0 | |t The Visual Computer |d Springer Berlin Heidelberg |g 31/6-8(2015-06-01), 947-957 |x 0178-2789 |q 31:6-8<947 |1 2015 |2 31 |o 371 | |
| 856 | 4 | 0 | |u https://doi.org/10.1007/s00371-015-1106-y |q text/html |z Onlinezugriff via DOI |
| 898 | |a BK010053 |b XK010053 |c XK010000 | ||
| 900 | 7 | |a Metadata rights reserved |b Springer special CC-BY-NC licence |2 nationallicence | |
| 908 | |D 1 |a research-article |2 jats | ||
| 949 | |B NATIONALLICENCE |F NATIONALLICENCE |b NL-springer | ||
| 950 | |B NATIONALLICENCE |P 856 |E 40 |u https://doi.org/10.1007/s00371-015-1106-y |q text/html |z Onlinezugriff via DOI | ||
| 950 | |B NATIONALLICENCE |P 700 |E 1- |a Pan |D Junjun |u State Key Laboratory of Virtual Reality Technology and Systems, Beihang University, 100191, Beijing, China |4 aut | ||
| 950 | |B NATIONALLICENCE |P 700 |E 1- |a Zhao |D Chengkai |u State Key Laboratory of Virtual Reality Technology and Systems, Beihang University, 100191, Beijing, China |4 aut | ||
| 950 | |B NATIONALLICENCE |P 700 |E 1- |a Zhao |D Xin |u State Key Laboratory of Virtual Reality Technology and Systems, Beihang University, 100191, Beijing, China |4 aut | ||
| 950 | |B NATIONALLICENCE |P 700 |E 1- |a Hao |D Aimin |u State Key Laboratory of Virtual Reality Technology and Systems, Beihang University, 100191, Beijing, China |4 aut | ||
| 950 | |B NATIONALLICENCE |P 700 |E 1- |a Qin |D Hong |u Department of Computer Science, Stony Brook University (SUNY Stony Brook), New York, USA |4 aut | ||
| 950 | |B NATIONALLICENCE |P 773 |E 0- |t The Visual Computer |d Springer Berlin Heidelberg |g 31/6-8(2015-06-01), 947-957 |x 0178-2789 |q 31:6-8<947 |1 2015 |2 31 |o 371 | ||