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Color image gradients for morphological segmentation: the weighted gradient improved by automatic imposition of weights

机译:用于形态学分割的彩色图像梯度:通过自动施加权重来改善加权梯度

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In a previous paper some metrics were proposed to compute gradient from color images by exploiting the intuitive notion of dissimilarity among colors. The weighted gradient, one of the six methods introduced, provided the best segmentation results (following a subjective visual criterion) when applied in conjunction with the watershed from markers technique. Despite the excellent results achieved by the linear combination of the gradients from each band of the original image under the HSI color space model, the weighted gradient lacked a systematic method to give weights to each gradient. The goal of this work is to propose such a systematic method, by computing the similarity between the image to compute the gradient and an "ideal image", whose histogram has a uniform distribution. Some segmentation experiments were done and the automatic weighted gradient provides results as good as the manual one.
机译:在先前的论文中,通过利用颜色之间的不相似性的直观概念,提出了一些用于从彩色图像计算梯度的度量。加权梯度是引入的六种方法之一,与标记技术的分水岭结合使用时,可提供最佳的分割结果(遵循主观视觉标准)。尽管在HSI色彩空间模型下通过线性组合原始图像各条带的梯度获得了出色的结果,但加权梯度仍缺乏一种系统的方法来赋予每个梯度权重。这项工作的目的是通过计算要计算梯度的图像与直方图具有均匀分布的“理想图像”之间的相似度,提出一种系统的方法。进行了一些分割实验,并且自动加权梯度提供的结果与手动方法一样好。

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