In the recent contribution [9], it was given a unified view of four neural-network-learning-based singular-value-decomposition algorithms, along with some analytical results that characterize their behavior. In the mentioned paper, no attention was paid to the specific integration of the learning equations which appear under the form of first-order matrix-type ordinary differential equations on the orthogonal group or on the Stiefel manifold. The aim of the present paper is to consider a suitable integration method, based on mathematical geometric integration theory. The obtained algorithm is applied to optical flow computation for motion estimation in image sequences. © Springer-Verlag 2004.

Optical flow estimation via neural singular value decomposition learning / Fiori, Simone; N., Del Buono; T., Politi. - 2:(2004), pp. 961-970.

Optical flow estimation via neural singular value decomposition learning

FIORI, Simone;
2004-01-01

Abstract

In the recent contribution [9], it was given a unified view of four neural-network-learning-based singular-value-decomposition algorithms, along with some analytical results that characterize their behavior. In the mentioned paper, no attention was paid to the specific integration of the learning equations which appear under the form of first-order matrix-type ordinary differential equations on the orthogonal group or on the Stiefel manifold. The aim of the present paper is to consider a suitable integration method, based on mathematical geometric integration theory. The obtained algorithm is applied to optical flow computation for motion estimation in image sequences. © Springer-Verlag 2004.
2004
International Conference on Computational Science and Its Applications
3540220542
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11566/73867
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