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Intelligent Object Detection Using Trees

机译:使用树的智能对象检测

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In this paper a method is proposed for detection and localisation of objects in images using connected operators. Existing methods typically use a moving window to detect objects, which means that an image needs to be scanned at each pixel location for each possible scale and orientation of the object of interest which makes such methods computationally expensive. Some of those methods have made some improvements in computational efficiency but they still rely on a moving window. Use of connected operators for efficiently detecting objects has typically been limited to objects consisting of a single connected region (either based on simple or more generalized connectivities). The proposed method uses component trees to efficiently detect and locate objects in an image. These objects can consist of many segments that are not necessarily connected. The computational efficiency of the connected operators is maintained as objects of interest of all scales and orientations are detected using two component trees constructed from the input image without using any moving window.
机译:本文提出了一种使用连接算子对图像中的物体进行检测和定位的方法。现有方法通常使用移动窗口来检测对象,这意味着需要针对感兴趣对象的每个可能的比例和方向在每个像素位置扫描图像,这使得这种方法在计算上很昂贵。这些方法中的一些方法在计算效率上已有所改进,但是它们仍然依赖于移动的窗口。使用连接的运算符来有效地检测对象通常仅限于由单个连接区域组成的对象(基于简单或更广义的连接性)。所提出的方法使用分量树来有效地检测和定位图像中的对象。这些对象可以包含许多不必连接的段。使用从输入图像构造的两个分量树而不使用任何移动窗口来检测所有比例和方向的感兴趣对象时,可以保持所连接运算符的计算效率。

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