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A New Approach to Color Edge Detection by Means of Transforming RGB Images into an 8-Dimension Color Space

机译:通过将RGB图像转换为8维颜色空间的颜色边缘检测的新方法

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In this paper, different ways of aggregating color information in edge extraction task are explored. One of these approaches is based on a previous transformation of the RGB images into a new color space of 8 dimensions. This increases the number of dimensions, making differences between colors easier to detect, and in this way improving the performance of edge detection task. Sobel and Canny algorithms are employed over the RGB images and its transformed version of 8 dimensions -that we have named Super8 image-. The set of employed images is the one from Berkeley’s dataset. In order to evaluate the performance, precision, recall and F measure are computed. The way of aggregating the color information is showed to be relevant. For some well-known algorithms, the new 8 dimension color space overtakes RGB’s for edge detection problem.
机译:在本文中,探索了在边缘提取任务中聚集颜色信息的不同方法。这些方法之一是基于先前将RGB图像转换为8维新色彩空间的方法。这增加了尺寸的数量,使颜色之间的差异更易于检测,并以此方式改善了边缘检测任务的性能。 Sobel和Canny算法用于RGB图像及其转换后的8维版本(我们将其称为Super8图像)。所使用的图像集来自伯克利的数据集。为了评估性能,计算精度,召回率和F量度。汇总颜色信息的方式显示为相关。对于某些众所周知的算法,新的8维色彩空间在边缘检测问题上超过了RGB。

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