Title of article
A Generic Framework for Tracking Using Particle Filter With Dynamic Shape Prior
Author/Authors
Rathi، نويسنده , , Y.، نويسنده , , Vaswani، نويسنده , , N.، نويسنده , , Tannenbaum، نويسنده , , A.، نويسنده ,
Issue Information
روزنامه با شماره پیاپی سال 2007
Pages
13
From page
1370
To page
1382
Abstract
Tracking deforming objects involves estimating the
global motion of the object and its local deformations as functions
of time. Tracking algorithms using Kalman filters or particle filters
(PFs) have been proposed for tracking such objects, but these
have limitations due to the lack of dynamic shape information.
In this paper, we propose a novel method based on employing a
locally linear embedding in order to incorporate dynamic shape
information into the particle filtering framework for tracking
highly deformable objects in the presence of noise and clutter. The
PF also models image statistics such as mean and variance of the
given data which can be useful in obtaining proper separation of
object and background.
Keywords
Dynamic shape prior , tracking , unscented Kalman filter. , particle filters (PFs) , Geometric active contours
Journal title
IEEE TRANSACTIONS ON IMAGE PROCESSING
Serial Year
2007
Journal title
IEEE TRANSACTIONS ON IMAGE PROCESSING
Record number
395701
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