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Recent advances in digital halftoning and inverse halftoningmethods

机译:数字半色调和反半色调方法的最新进展

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Halftoning is the rendition of continuous-tone pictures on displays, paper or other media that are capable of producing only two levels. In digital halftoning, we perform the gray scale to bilevel conversion digitally using software or hardware. In the last three decades, several algorithms have evolved for halftoning. Examples of algorithms include ordered dither, error diffusion, blue noise masks, green noise halftoning, direct binary search (DBS), and dot diffusion. In this paper, we first review some of the algorithms which have a direct bearing on our paper and then describe some of the more recent advances in the field. The dot-diffusion method for digital halftoning has the advantage of pixel-level parallelism unlike the error-diffusion method, which is a popular halftoning method. However, the image quality offered by error diffusion is still regarded as superior to most of the other known methods. We first review error diffusion and dot diffusion, and describe a recent method to improve the image quality of the dot-diffusion algorithm which takes advantage of the Human Visual System (HVS) function. Then, we discuss the inverse halftoning problem
机译:半色调是指仅能产生两个电平的显示器,纸张或其他介质上的连续色调图片的再现。在数字半色调中,我们使用软件或硬件以数字方式执行从灰度到双级转换的过程。在过去的三十年中,为半色调发展了几种算法。算法示例包括有序抖动,误差扩散,蓝噪声蒙版,绿噪声半色调,直接二进制搜索(DBS)和点扩散。在本文中,我们首先回顾一些与我们的论文直接相关的算法,然后描述该领域的一些最新进展。用于数字半色调的点扩散方法具有像素级并行性的优点,而不同于误差扩散方法,后者是一种流行的半色调方法。但是,误差扩散所提供的图像质量仍然被认为优于大多数其他已知方法。我们首先回顾误差扩散和点扩散,并描述一种新的方法来提高点扩散算法的图像质量,该算法利用了人类视觉系统(HVS)功能。然后,我们讨论逆半色调问题

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