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A flexible edge matching technique for object detection in dynamic environment

机译:动态环境中目标检测的灵活边缘匹配技术

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摘要

Considering the robustness, stability and reduced volume of data, researchers have focused on using edge information in various video processing applications including moving object detection, tracking and target recognition. Though the edge information is more robust compared to intensity, it also exhibits variations in different frames due to illumination change and noise. In addition to this, the amount of variation varies from edge to edge. Thus, without making use of this variability information, it is difficult to obtain an optimal performance during edge matching. However, traditional edge pixel-based methods do not keep structural information of edges and thus they are not suitable to extract and hold this variability information. To achieve this, we represent edges as segments that make use of the structural and relational information of edges to allow extraction of this variability information. During edge matching, existing algorithms do not handle the size, positional and rotational variations to deal with edges of arbitrary shapes. In this paper, we propose a knowledge-based flexible edge matching algorithm where knowledge is obtained from the statistics on the environmental dynamics, and flexibility is to deal with the arbitrary shape and the geometric variations of edges by making use of this knowledge. In this paper, we detailed the effectiveness of the proposed matching algorithm in moving object detection and also indicated its suitability in other applications like target detection and tracking.
机译:考虑到数据的鲁棒性,稳定性和减少的数据量,研究人员一直致力于在各种视频处理应用程序中使用边缘信息,包括移动物体检测,跟踪和目标识别。尽管边缘信息与强度相比更健壮,但由于光照变化和噪声,边缘信息在不同的帧中也会出现变化。除此之外,变化量因边缘而异。因此,在不利用该可变性信息的情况下,在边缘匹配期间难以获得最佳性能。但是,传统的基于边缘像素的方法不能保留边缘的结构信息,因此它们不适合提取和保留此可变性信息。为了实现这一点,我们将边缘表示为分段,这些分段利用边缘的结构和关系信息来提取此可变性信息。在边缘匹配期间,现有算法无法处理尺寸,位置和旋转变化以处理任意形状的边缘。在本文中,我们提出了一种基于知识的柔性边缘匹配算法,该算法从环境动力学的统计数据中获取知识,而灵活性则是利用这些知识来处理边缘的任意形状和几何变化。在本文中,我们详细介绍了所提出的匹配算法在运动目标检测中的有效性,并指出了其在目标检测和跟踪等其他应用中的适用性。

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