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Learning to Detect Natural Image Boundaries Using Brightness and Texture

机译:学习使用亮度和纹理检测自然图像边界

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The goal of this work is to accurately detect and localize boundaries in natural scenes using local image measurements. We formulate features that respond to characteristic changes in brightness and texture associated with natural boundaries. In order to combine the information from these features in an optimal way, a classifier is trained using human labeled images as ground truth. We present precision-recall curves showing that the resulting detector outperforms existing approaches.
机译:这项工作的目标是使用本地图像测量准确地检测和本地化自然场景中的边界。我们制定响应与自然界限相关的亮度和纹理的特征变化的特征。为了以最佳方式将来自这些特征的信息组合,使用人类标记的图像作为地面真理来训练分类器。我们呈现精密召回曲线,显示所得探测器优于现有方法。

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