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Object tracking in infrared image sequence by Monte-Carlo method

机译:蒙特卡罗方法跟踪红外图像序列中的目标

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This paper presents a robust tracking algorithm for infrared objects in the image sequence, which is based on particle filer. Particle filter is a powerful tool for tracking especially in non-Gaussian condition, but the selection of samples is still a challenging problem. According to the frame-to-frame correlation, two basic assumptions are proposed. Borrowing the idea from Sequence Importance Sampling, Monte-Carlo method will be applied to solve the well-known shortcomings of Particle filter in this paper. Technologically, the proposed algorithm could also track multiple objects successfully. The experimental result has demonstrated its feasibility and validity.
机译:本文提出了一种基于粒子滤波器的图像序列中红外物体鲁棒跟踪算法。粒子过滤器是一种特别是在非高斯条件下进行跟踪的强大工具,但是样本的选择仍然是一个具有挑战性的问题。根据帧间相关性,提出了两个基本假设。借鉴序列重要性抽样的思想,本文将采用蒙特卡罗方法解决粒子滤波器的众所周知的缺点。从技术上讲,该算法还可以成功跟踪多个对象。实验结果证明了其可行性和有效性。

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