DocumentCode :
145456
Title :
Single view augmentation of 3D elastic objects
Author :
Haouchine, Nazim ; Dequidt, Jeremie ; Berger, Marie-Odile ; Cotin, Stephane
fYear :
2014
fDate :
10-12 Sept. 2014
Firstpage :
229
Lastpage :
236
Abstract :
This paper proposes an efficient method to capture and augment highly elastic objects from a single view. 3D shape recovery from a monocular video sequence is an underconstrained problem and many approaches have been proposed to enforce constraints and resolve the ambiguities. State-of-the art solutions enforce smoothness or geometric constraints, consider specific deformation properties such as inextensibility or ressort to shading constraints. However, few of them can handle properly large elastic deformations. We propose in this paper a real-time method which makes use of a mechanical model and is able to handle highly elastic objects. Our method is formulated as a energy minimization problem accounting for a non-linear elastic model constrained by external image points acquired from a monocular camera. This method prevents us from formulating restrictive assumptions and specific constraint terms in the minimization. The only parameter involved in the method is the Young´s modulus where we show in experiments that a rough estimate of its value is sufficient to obtain a good reconstruction. Our method is compared to existing techniques with experiments conducted on computer-generated and real data that show the effectiveness of our approach. Experiments in the context of minimally invasive liver surgery are also provided.
Keywords :
elastic deformation; image reconstruction; image sequences; minimisation; video signal processing; 3D elastic object; 3D shape recovery; Young modulus; deformation property; elastic deformation; energy minimization problem; minimally invasive liver surgery; monocular video sequence; shading constraint; single view augmentation; Computational modeling; Deformable models; Shape; Strain; Three-dimensional displays; Young´s modulus; Computational Geometry and Object Modeling — Physically based modeling; H.5.1 [Information Interfaces and Presentation]: Multimedia Information Systems — Artificial; I.3.5 [Computer Graphics]; augmented; virtual realities;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Mixed and Augmented Reality (ISMAR), 2014 IEEE International Symposium on
Conference_Location :
Munich
Type :
conf
DOI :
10.1109/ISMAR.2014.6948432
Filename :
6948432
Link To Document :
بازگشت