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A Scale Self-Adaptive Tracking Method Based on Moment Invariants

机译:一种基于矩不变性的尺度自适应跟踪方法

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摘要

Object tracking is a critical task in automatic security precaution systems. In order to precisely track objects, two major problems have to be solved. First, when the background and the object are similar, the tracking center of the object will be drifted to the background. Second, when the scales of an object are changed, the object will be lost in tracking. The widely used object tracking algorithms, e.g. Mean-Shift, Particle Filter etc., cannot effectively solve these problems. In this paper, we proposed SSATMI, a scale self-adaptive tracking method based on moment invariants. In SSATMI, to solve the first problem, a joint feature histogram, called spatial histogram, is proposed to represent the object. The spatial histogram includes not only color information but also spatial information so that it can describe the object more precisely and robustly for tracking. In addition, a novel kernel function is proposed for the joint feature histogram to improve the computation efficiency. To solve the second problem, HU moment invariant is applied to modify the kernel bandwidth of the candidate object. The SSATMI has been evaluated in a PC on a video from VIRAT Ground Video Dataset, a video taken under scale changing and light changing, and a video taken under scale changing and occluding. The experimental results show that SSATMI is adaptive to scale changing and light changing, and robust to partial occlusion. In addition, the tracking speed is fast enough for real-time tracking applications.
机译:在自动安全防范系统中,对象跟踪是一项关键任务。为了精确地跟踪物体,必须解决两个主要问题。首先,当背景和对象相似时,对象的跟踪中心将漂移到背景。其次,当更改对象的比例时,该对象将丢失跟踪。广泛使用的对象跟踪算法,例如均值漂移,粒子滤波器等无法有效解决这些问题。本文提出了一种基于矩不变性的尺度自适应跟踪方法SSATMI。在SSATMI中,为了解决第一个问题,提出了一种称为空间直方图的联合特征直方图来表示对象。空间直方图不仅包括颜色信息,而且还包括空间信息,因此它可以更精确,更可靠地描述对象以进行跟踪。此外,针对联合特征直方图提出了一种新颖的核函数,以提高计算效率。为了解决第二个问题,HU矩不变被应用于修改候选对象的内核带宽。 SSATMI已在PC上通过VIRAT地面视频数据集的视频,缩放比例和光线变化拍摄的视频以及缩放比例和遮挡拍摄的视频进行了评估。实验结果表明,SSATMI能够适应尺度变化和光线变化,并且对部分遮挡具有鲁棒性。此外,跟踪速度对于实时跟踪应用足够快。

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  • 作者单位

    Beihang Univ, Coll Software, Beijing 100191, Peoples R China;

    Beihang Univ, Coll Software, Beijing 100191, Peoples R China;

    Hong Kong Polytech Univ, Dept Comp, Kowloon, Hong Kong, Peoples R China;

    Hong Kong Polytech Univ, Dept Comp, Kowloon, Hong Kong, Peoples R China;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
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