基于Hough变换和集分类器的凸多边形智能检测

Xudong Yang, Peng Dai, P. He, Pan Li
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引用次数: 5

摘要

本文提出了一种检测图像平面上凸多边形的形状识别方法,该方法采用霍夫变换(Hough transform, HT)和设计一组分类器对凸多边形进行特征化。该方法通过在HPS (Hough参数空间)中搜索累加器的峰值来提取CVP的边。基于HPS中的峰,可以建立CVP各边及其延伸线形成的交点集合,其中包括一个只包含CVP顶点的子集。基于子集中元素的梯度分布,设计了提取子集的分类器。与传统方法相比,该方法具有检测不连续边缘破碎的CVP形状的优点,值得推广。
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Intelligent Detection of Convex Polygon Based on Hough Transformation and Set Classifier
This paper proposes a shape recognition method for detecting convex polygons (CVPs) in image planes, which is characterized by using Hough transformation (HT) and designing a set classifier. HT is used to extract the sides of a CVP by searching the peaks of accumulators in the Hough Parametric Space (HPS). A total set of the intersection points formed by all sides of CVP and their extending lines can be established based on the peaks in HPS, which includes a subset only containing the vertex of CVP. Based on the gradient distribution of the elements in the subset, the classifier for extracting the subset is designed. Compared with conventional method, the detection method has advantage of detecting the CVP shape with discontinuity and broken edges, and thus worthy of being promoted.
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