This thesis develops a physics-based framework for 3D shape and nonrigid motion modeling for computer vision and computer graphics. In computer vision it addresses the problems of complex 3D shape representation, shape reconstruction, quantitative model extraction from biomedical data for analysis and visualization, shape estimation, and motion tracking. In computer graphics it demonstrates the generative power of our framework to synthesize constrained shapes, nonrigid object motions and object interactions for the purposes of computer animation. Our framework is based on the use of a new class of dynamically deformable primitives which allow the combination of global and local deformations. It incorporates physical constraints to compose ...
We present a novel method for estimating motion parameters and point correspondences between 3D surf...
It is well known that biological structures such as human brains, although may contain the same glob...
Thesis (Ph. D.)--Massachusetts Institute of Technology, Dept. of Electrical Engineering and Computer...
This thesis develops a physics-based framework for 3D shape and nonrigid motion modeling for compute...
(Dissertation) This thesis develops a physics-based framework for 3D shape and nonrigid motion model...
A physics-based framework for 3-D shape and nonrigid motion estimation for real-time computer vision...
The idea of using physics-based models has received considerable interest in computer graphics and c...
The idea of using physics-based models has received considerable interest in computer graphics and c...
In an earlier work we proposed a class of physically based models suitable for animating flexible ob...
Our world is full of objects that deform over time, for example animals, trees and clouds. Yet, the ...
The computational modelling of deformations has been actively studied for the last thirty years. Thi...
The final publication is available at link.springer.comIn this paper, we simultaneously estimate cam...
The use of computer vision to locate or track objects in images has applications in a diversity of d...
Although kinematic modelling methods are adequate for describing the shapes of static objects, they ...
We present a novel method for estimating motion parameters and point correspondences between 3D surf...
We present a novel method for estimating motion parameters and point correspondences between 3D surf...
It is well known that biological structures such as human brains, although may contain the same glob...
Thesis (Ph. D.)--Massachusetts Institute of Technology, Dept. of Electrical Engineering and Computer...
This thesis develops a physics-based framework for 3D shape and nonrigid motion modeling for compute...
(Dissertation) This thesis develops a physics-based framework for 3D shape and nonrigid motion model...
A physics-based framework for 3-D shape and nonrigid motion estimation for real-time computer vision...
The idea of using physics-based models has received considerable interest in computer graphics and c...
The idea of using physics-based models has received considerable interest in computer graphics and c...
In an earlier work we proposed a class of physically based models suitable for animating flexible ob...
Our world is full of objects that deform over time, for example animals, trees and clouds. Yet, the ...
The computational modelling of deformations has been actively studied for the last thirty years. Thi...
The final publication is available at link.springer.comIn this paper, we simultaneously estimate cam...
The use of computer vision to locate or track objects in images has applications in a diversity of d...
Although kinematic modelling methods are adequate for describing the shapes of static objects, they ...
We present a novel method for estimating motion parameters and point correspondences between 3D surf...
We present a novel method for estimating motion parameters and point correspondences between 3D surf...
It is well known that biological structures such as human brains, although may contain the same glob...
Thesis (Ph. D.)--Massachusetts Institute of Technology, Dept. of Electrical Engineering and Computer...