首页> 外文会议>Automatic Target Recognition XVII; Proceedings of SPIE-The International Society for Optical Engineering; vol.6566 >Signal-to-Noise Behavior for Matches to Gradient Direction Models of Corners in Images
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Signal-to-Noise Behavior for Matches to Gradient Direction Models of Corners in Images

机译:图像角点与梯度方向模型匹配的信噪特性

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摘要

Gradient direction models for corners of prescribed acuteness, leg length, and leg thickness are constructed by generating fields of unit vectors emanating from leg pixels that point normal to the edges. A novel FFT-based algorithm that quickly matches models of corners at all possible positions and orientations in the image to fields of gradient directions for image pixels is described. The signal strength of a corner is discussed in terms of the number of pixels along the edges of a corner in an image, while noise is characterized by the coherence of gradient directions along those edges. The detection-false alarm rate behavior of our corner detector is evaluated empirically by manually constructing maps of corner locations in typical overhead images, and then generating different ROC curves for matches to models of corners with different leg lengths and thicknesses. We then demonstrate how corners found with our detector can be used to quickly and automatically find families of polygons of arbitrary position, size and orientation in overhead images.
机译:规定锐度,腿长和腿粗的角的梯度方向模型是通过生成从指向垂直于边缘的腿像素发出的单位矢量的场而构建的。描述了一种新颖的基于FFT的算法,该算法可快速将图像中所有可能位置和方向的角模型与图像像素的梯度方向字段进行匹配。拐角的信号强度是根据图像中拐角边缘的像素数来讨论的,而噪声的特征是沿着那些边缘的梯度方向的相干性。通过手动构建典型开销图像中拐角位置的地图,然后生成不同的ROC曲线以匹配具有不同腿长和粗细的拐角模型,经验地评估了我们的拐角检测器的检测误报率行为。然后,我们演示了如何使用检测器找到的角可以快速,自动地找到开销图像中任意位置,大小和方向的多边形族。

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