A Study of Measures for Contour-based Recognition and Localization of Known Objects in Digital Images

H. Abdulrahman, Baptiste Magnier
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引用次数: 4

Abstract

Usually, the most important structures in an image are extracted by an edge detector. Once extracted edges are binarized, they represent the shape boundary information of an object. For the edge-based localization/matching process, the differences between a reference edge map and a candidate image are quantified by computing a performance measure. This study investigates supervised contour measures for determining the degree to which an object shape differs from a desired position. Therefore, several distance measures are evaluated for different shape alterations: translation, rotation and scale change. Experiments on both synthetic and real images exhibit which measures are accurate enough for an object pose or matching estimation, useful for robot task as to refine the object pose.
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数字图像中基于轮廓的已知目标识别与定位方法研究
通常,图像中最重要的结构是由边缘检测器提取的。一旦提取的边缘被二值化,它们就代表了一个物体的形状边界信息。对于基于边缘的定位/匹配过程,参考边缘图和候选图像之间的差异通过计算性能度量来量化。本研究调查了监督轮廓测量,以确定物体形状与期望位置不同的程度。因此,对不同的形状变化评估了几种距离度量:平移、旋转和尺度变化。在合成图像和真实图像上的实验表明,这些测量方法对物体姿态或匹配估计足够准确,对机器人任务如改进物体姿态有用。
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