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Monochrome image representation and segmentation based on the pseudo-color and PCT transformations

机译:基于伪颜色和PCT变换的单色图像表示和分割

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Monochrome image representation and segmentation based on the pseudo-color transformation and principal components transform (PCT) are presented in this paper. The HLS family of color models is employed to map a monochrome image into a new multidimensional color space where image features are enhanced by color representation. An optimal decomposition is then applied using the PCT transformation of the color space, in which image features are better defined and the automatic image segmentation is easily performed using the PCT-guided median splitting. Attempts are also made to compare the proposed segmentation with the fuzzy c-means (FCM) clustering in terms of the quality and computational complexity involved in segmentation. Results from mammograph and MRI image representation and segmentation are presented.
机译:本文提出了基于伪彩色变换和主成分变换(PCT)的单色图像表示和分割。 HLS系列颜色模型用于将单色图像映射到新的多维色彩空间中,其中通过颜色表示增强了图像特征。然后使用颜色空间的PCT变换应用最佳分解,其中图像特征更好地定义并且使用PCT引导的中值分割容易地执行自动图像分割。还可以尝试将建议的分段与模糊C-Miles(FCM)聚类进行比较,以便在分割中涉及的质量和计算复杂性方面进行比较。提出了乳房XIMORM和MRI图像表示和分割的结果。

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