利用主动轮廓模型和无气味卡尔曼滤波对视频序列中的目标进行跟踪

Z. Messaoudi, A. Ouldali, M. Oussalah
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引用次数: 4

摘要

在本文中,我们提出了一种新的活动轮廓模型(ACM)与无气味卡尔曼滤波器(UKF)的关联来跟踪视频序列中的可变形物体。所提出的方法是基于使用与UKF相关的选择性二值高斯滤波正则化水平集(ACM-SBGFRLS-UKF)而不是传统的与UKF相关的水平集(TLS) (ACM-TLS-UKF)。事实上,在目前的工作中,我们利用了SBGFRLS与TLS相比的各种优势,TLS的缺点是,从对首字母条件和噪声的敏感性,到无法选择部分或全局分割,以及方法的复杂性。最后,通过几个数值模拟,对这种新的关联方法ACM-SBGFRLS-UKF与ACM-TLS-UKF进行了比较研究,用于跟踪视频序列中的可变形物体。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Tracking objects in video sequence using active contour models and unscented Kalman filter
In this paper, we propose a new association of active contour model (ACM) with the unscented Kalman filter (UKF) to track deformable objects in a video sequence. The proposed approach is based on the use of the selective binary and Gaussian filtering regularization level set associated to the UKF (ACM-SBGFRLS-UKF) instead of the traditional level set (TLS) associated to the UKF (ACM-TLS-UKF). In fact, in the present work, we exploit the various advantages that the SBGFRLS offers compared to the TLS which suffers, from the sensibility to initials conditions and noise, to the impossibility to select partial or global segmentation and also from the complexity of the approach. Finally, a comparison study is presented, throughout several numerical simulations, of this new association approach ACM-SBGFRLS-UKF against the ACM-TLS-UKF for tracking deformable objects in a video sequence.
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