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Edge color distribution transform: an efficient tool for object detection in images

机译:边缘颜色分布变换:图像中的对象检测有效工具

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Object detection in images is a fundamental task in many image analysis applications. Existing methods for low-level object detection always perform the color-similarity analyses in the 2D image space. However, the crowded edges of different objects make the detection complex and error-prone. This paper proposes to detect objects in a new edge color distribution space (ECDS) rather than in the image space. In the 3D ECDS, the edges of different objects are segregated and the spatial relation of a same object is kept as well, which make the object detection easier and less error-prone. Since uniform-color objects and textured objects have different distribution characteristics in ECDS, this paper gives a 3D edge-tracking algorithm for the former and a cuboid- growing algorithm for the latter. The detection results are correct and noise free, so they are suitable for the high-level object detection. The experimental results on a synthetic image and a real-life image are included.
机译:图像中的对象检测是许多图像分析应用中的基本任务。低级对象检测的现有方法始终在2D图像空间中执行颜色相似性分析。然而,不同对象的拥挤边缘使得检测复杂和容易出错。本文建议检测新的边缘颜色分布空间(ECD)中的对象而不是在图像空间中。在3D ECD中,拍摄不同对象的边缘,并且也保持了相同对象的空间关系,这使得物体检测更容易,更少易于出错。由于均匀 - 颜色对象和纹理对象具有ECDS中具有不同的分布特性,因此该论文为前者提供了一种3D边缘跟踪算法和后者的长方形算法。检测结果是正确的,无噪声,因此它们适用于高级对象检测。包括合成图像和现实寿命图像的实验结果。

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