Real time object tracking based on segmentation and distance minimization

Debarati B. Chakraborty, D. Patra
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引用次数: 3

Abstract

In this paper we propose a novel algorithm for object tracking from Video images based on segmentation and Kernel based procedure. Many Kernel based object tracking algorithms have been developed during last few years. The computational complexity becomes very high in those kernel based techniques. In our proposed method the target localization problem is minimized using segmentation technique, instead of using mean shift tracking algorithm. Following segmentation technique the localization problem of target candidate gets minimized, and then comparing the target candidate with the target model by using Bhattacharya coefficient the object can easily be detected. So, the object can be tracked with less computational burden and more efficiently. The proposed algorithm is validated with an existing video sequence and another with a real time video sequence.
基于分割和距离最小化的实时目标跟踪
本文提出了一种基于分割和核函数的视频图像目标跟踪算法。在过去的几年中,许多基于内核的目标跟踪算法被开发出来。在这些基于核的技术中,计算复杂度变得非常高。在我们提出的方法中,使用分割技术来最小化目标定位问题,而不是使用均值移位跟踪算法。采用分割技术将候选目标的定位问题最小化,然后利用Bhattacharya系数将候选目标与目标模型进行比较,从而容易地检测到目标。因此,可以以更少的计算量和更高的效率跟踪目标。用一个已存在的视频序列和另一个实时视频序列对该算法进行了验证。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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