Particle Filter Based Object Tracking with Sift and Color Feature

S. Fazli, H. M. Pour, H. Bouzari
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引用次数: 48

Abstract

Visual object tracking is an important topic in multimedia technologies. This paper presents robust implementation of an object tracker using a vision system that takes into consideration partial occlusions, rotation and scale for a variety of different objects. A scale invariant feature transform (SIFT) based color particle filter algorithm is proposed for object tracking in real scenarios. The Scale Invariant Feature Transform (SIFT) has become a popular feature extractor for vision based applications. It has been successfully applied for metric localization and mapping. Then the object is tracked by a color based particle filter. The color particle filter has proven to be an efficient, simple and robust tracking algorithm. Experimental results of applying this technique show improvement in tracking and robustness in recovering from partial occlusions, rotation and scale.
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基于粒子滤波的Sift和颜色特征目标跟踪
视觉目标跟踪是多媒体技术中的一个重要课题。本文提出了一种使用视觉系统的目标跟踪器的鲁棒实现,该视觉系统考虑了各种不同目标的部分遮挡,旋转和缩放。提出了一种基于尺度不变特征变换(SIFT)的彩色粒子滤波算法,用于真实场景下的目标跟踪。在基于视觉的应用中,尺度不变特征变换(SIFT)已成为一种流行的特征提取方法。该方法已成功应用于度量定位和映射。然后物体被一个基于颜色的粒子过滤器跟踪。彩色粒子滤波是一种高效、简单、鲁棒的跟踪算法。实验结果表明,该方法在局部咬合、旋转和尺度恢复方面具有较好的跟踪性和鲁棒性。
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