基于LBG矢量量化算法的灰度图像着色中分类相似测度的性能评价

Sudeep D. Thepade, Rajat H. Garg, Sumit A. Ghewade, Prasad A. Jagdale, Nilesh M. Mahajan
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引用次数: 6

摘要

图像着色是从多色源图像向灰度目标图像添加颜色的方法。该方法利用LBG码本生成算法实现灰度图像像素与相对相似的多色图像像素的自动着色。本文对不同的相似度测度对着色质量的影响进行了详细的性能评价。实验是在一个有28个图像的试验台上完成的。相似性度量的性能比较表明,堪培拉距离和曼哈顿距离优于基于LBG的着色技术的其他考虑的相似性度量。码本尺寸越大,着色质量越好。汉明距离和波浪篱距离不适合灰度图像着色。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Performance assessment of assorted similarity measures in gray image colorization using LBG vector quantization algorithm
Image colorization is method of adding colors to a graytarget image from multichrome source image. The proposed method performs automatic colorization using LBG codebook generation algorithm with assorted similarity measures for mapping of grayimage pixels with relatively analogous multichrome image pixels. The detailed performance assessment of the different similarity measures on the quality of colorization is done here. Experimentation is done with a test bed having 28 images. The performance comparison of the similarity measures have shown that the Canberra distance and Manhattan distance out performs other considered similarity measures for LBG based colorization technique. Higher codebook sizes give better colorization quality. Hamming distance and Wave Hedges distance are not found suitable for gray image colorization.
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