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Novel target segmentation and tracking based on fuzzy membership distribution for vision-based target tracking system

机译:视觉目标跟踪系统中基于模糊隶属度分布的目标分割与跟踪

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摘要

One of the basic processes of a vision-based target tracking system is the detection process that separates an object from the background in a given image. A novel target detection technique for suppression of the background clutter is presented that uses a predicted point that is estimated from a tracking filter. For every pixel, the three-dimensional feature that is composed of the x-position, the y-position and the gray level of its position is used for evaluating the membership value that describes the probability of whether the pixel belongs to the target or to the background. These membership values are transformed into the membership level histogram. We suggest an asymmetric Laplacian model for the membership distribution of the background pixel and determine the optimal membership value for detecting the target region using the likelihood criterion. The proposed technique is applied to several infra-red image sequences and CCD image sequences to test segmentation and tracking. The feasibility of the proposed method is verified through comparison of the experimental results with the other techniques.
机译:基于视觉的目标跟踪系统的基本过程之一是将给定图像中的物体与背景分离的检测过程。提出了一种用于抑制背景杂波的新颖目标检测技术,该技术使用从跟踪滤波器估计的预测点。对于每个像素,由x位置,y位置及其位置的灰度级组成的三维特征用于评估隶属度值,该隶属度值描述了该像素属于目标还是目标的概率。背景。这些成员资格值将转换为成员资格级别直方图。我们建议为背景像素的隶属度分配一个不对称的Laplacian模型,并使用似然准则确定用于检测目标区域的最佳隶属度值。所提出的技术被应用于多个红外图像序列和CCD图像序列以测试分割和跟踪。通过将实验结果与其他技术进行比较,验证了该方法的可行性。

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