Joint quantization and error diffusion of color images using competitive learning

P. Scheunders, S. D. Backer
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引用次数: 14

Abstract

A competitive learning scheme for color image quantization is elaborated, in which the dithering process for eliminating contouring effects, instead of performed a posteriori, is imbedded in the quantization process. Quantization is performed by clustering in color space. The dithering process is a simple error diffusion which diffuses the quantization error made by one pixel to its local neighborhood. For small color palettes, this is demonstrated to improve the visual quality of quantized images.
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基于竞争学习的彩色图像联合量化与误差扩散
提出了一种彩色图像量化的竞争学习方案,该方案将消除轮廓效应的抖动过程嵌入到量化过程中,而不是进行后验处理。量化是通过色彩空间的聚类来实现的。抖动过程是一种简单的误差扩散过程,它将一个像素的量化误差扩散到其局部邻域。对于小的调色板,这被证明可以提高量化图像的视觉质量。
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Computer Analysis of Images and Patterns: 19th International Conference, CAIP 2021, Virtual Event, September 28–30, 2021, Proceedings, Part I Computer Analysis of Images and Patterns: 19th International Conference, CAIP 2021, Virtual Event, September 28–30, 2021, Proceedings, Part II Computer Analysis of Images and Patterns: CAIP 2019 International Workshops, ViMaBi and DL-UAV, Salerno, Italy, September 6, 2019, Proceedings Computer Analysis of Images and Patterns: 18th International Conference, CAIP 2019, Salerno, Italy, September 3–5, 2019, Proceedings, Part I Computer Analysis of Images and Patterns: 18th International Conference, CAIP 2019, Salerno, Italy, September 3–5, 2019, Proceedings, Part II
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