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Structural Edge Detection: A Dataset and Benchmark

机译:结构边缘检测:数据集和基准

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摘要

Edge detection is a fundamental problem in computer vision community. In this paper, we propose a novel concept for edge detection called Structural Edge. The Structural edges include occluding contours of objects as well as orientation discontinuities in surfaces that define the 3D structure of objects and their environments. This contrasts the semantic edge which is only the boundary between semantic areas. While existing edge detection methods focus on either semantic boundaries or low-level gradients, we focus on the structural edge. To achieve that, in this paper, we propose the structural edge dataset along with a benchmark. The structural edge dataset contains 600 images of natural indoor and outdoor scenes. The structural edges are labeled manually and validated by eye-tracking data from 10 participants with overall 20 trials. Later, we use the dataset to benchmark the existing edge detection methods. We benchmark both the learning based and non-learning based methods and draw the conclusion that existing methods cannot fully solve the structural edge detection. We encourage new research to exploit the proposed task.
机译:边缘检测是计算机视觉社区中的一个基本问题。在本文中,我们提出了一种新的边缘检测概念,称为“结构边缘”。结构边缘包括遮挡对象的轮廓以及定义对象及其环境的3D结构的表面中的方向不连续性。这与仅在语义区域之间的边界的语义边缘形成对比。现有的边缘检测方法关注语义边界或低级梯度,而我们关注结构边缘。为此,在本文中,我们提出了结构边缘数据集以及基准。结构边缘数据集包含600个室内和室外自然场景的图像。人工标记结构边缘,并通过总共20项试验的10名参与者的眼动数据进行验证。后来,我们使用数据集对现有的边缘检测方法进行基准测试。我们对基于学习的方法和基于非学习的方法进行了基准测试,得出的结论是现有方法无法完全解决结构边缘检测。我们鼓励开展新的研究以利用拟议的任务。

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