上下文主色名称提取的网络图像搜索

Peng Wang, Dongqing Zhang, Gang Zeng, Jingdong Wang
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引用次数: 15

摘要

本文研究了图像感知主色名称的提取问题。我们的方法是由这样一个原理驱动的,即与人类识别的一个主色名称对应的像素通常是上下文相关的,空间相连的,并形成一个感知上有意义的区域。我们的算法首先学习从RGB颜色到颜色名称的概率映射。然后,利用双阈值方法通过考虑相邻像素来确定特定图像中RGB像素的颜色名称。该方案有效地处理了属于多个主色名称的模糊像素。最后,结合显著性信息提取感知上的主色。在我们的标记图像数据集和Ebay图像集上的实验证明了我们的方法的有效性。
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Contextual Dominant Color Name Extraction for Web Image Search
This paper addresses the problem of extracting perceptually dominant color names of images. Our approach is motivated by the principle that the pixels corresponding to one dominant color name identified by human are often context dependent, spatially connected and form a perceptually meaningful region. Our algorithm first learns the probabilistic mapping from a RGB color to a color name. Then, a double-threshold approach is utilized to determine the color name of a RGB pixel in a specific image by considering its neighboring pixels. This scheme effectively deals with the pixels ambiguously belonging to several dominant color names. Last, the saliency information is combined to extract perceptually dominant colors. Experiments on our labeled image data set and the Ebay image set demonstrate the effectiveness of our approach.
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