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Efficient, Edge-Aware, Combined Color Quantization and Dithering

机译:高效,边缘感知,组合的色彩量化和抖动

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In this paper, we present a novel algorithm to simultaneously accomplish color quantization and dithering of images. This is achieved by minimizing a perception-based cost function, which considers pixel-wise differences between filtered versions of the quantized image and the input image. We use edge aware filters in defining the cost function to avoid mixing colors on the opposite sides of an edge. The importance of each pixel is weighted according to its saliency. To rapidly minimize the cost function, we use a modified multi-scale iterative conditional mode (ICM) algorithm, which updates one pixel a time while keeping other pixels unchanged. As ICM is a local method, careful initialization is required to prevent termination at a local minimum far from the global one. To address this problem, we initialize ICM with a palette generated by a modified median-cut method. Compared with previous approaches, our method can produce high-quality results with a fewer visual artifacts but also requires significantly less computational effort.
机译:在本文中,我们提出了一种新颖的算法,可以同时完成图像的色彩量化和抖动。这是通过最小化基于感知的成本函数实现的,该函数考虑了量化图像和输入图像的滤波版本之间的逐像素差异。我们在定义成本函数时使用边缘感知滤镜,以避免在边缘的相对两侧混合颜色。每个像素的重要性根据其显着性进行加权。为了快速最小化成本函数,我们使用改进的多尺度迭代条件模式(ICM)算法,该算法一次更新一个像素,而其他像素保持不变。由于ICM是本地方法,因此需要仔细初始化,以防止在距离全局最小值远的本地最小值处终止。为了解决这个问题,我们使用由修改的中位数切割方法生成的调色板初始化ICM。与以前的方法相比,我们的方法可以产生具有较少视觉伪像的高质量结果,但是所需的计算量也大大减少。

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