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Training-Based Descreening

机译:基于培训的筛选

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摘要

Conventional halftoning methods employed in electrophotographic printers tend to produce Moireacute artifacts when used for printing images scanned from printed material, such as books and magazines. We present a novel approach for descreening color scanned documents aimed at providing an efficient solution to the Moireacute problem in practical imaging devices, including copiers and multifunction printers. The algorithm works by combining two nonlinear image-processing techniques, resolution synthesis-based denoising (RSD), and modified smallest univalue segment assimilating nucleus (SUSAN) filtering. The RSD predictor is based on a stochastic image model whose parameters are optimized beforehand in a separate training procedure. Using the optimized parameters, RSD classifies the local window around the current pixel in the scanned image and applies filters optimized for the selected classes. The output of the RSD predictor is treated as a first-order estimate to the descreened image. The modified SUSAN filter uses the output of RSD for performing an edge-preserving smoothing on the raw scanned data and produces the final output of the descreening algorithm. Our method does not require any knowledge of the screening method, such as the screen frequency or dither matrix coefficients, that produced the printed original. The proposed scheme not only suppresses the Moireacute artifacts, but, in addition, can be trained with intrinsic sharpening for deblurring scanned documents. Finally, once optimized for a periodic clustered-dot halftoning method, the same algorithm can be used to inverse halftone scanned images containing stochastic error diffusion halftone noise
机译:电子照相打印机中使用的常规半色调方法在用于打印从书本和杂志等印刷材料扫描的图像时,往往会产生莫尔白(Moireacute)伪影。我们提出了一种用于对彩色扫描文档进行脱网的新颖方法,旨在为包括复印机和多功能打印机在内的实际成像设备中的Moireacute问题提供有效的解决方案。该算法通过结合两种非线性图像处理技术,基于分辨率合成的降噪(RSD)和经过修改的最小单值段同化核(SUSAN)滤波来工作。 RSD预测器基于随机图像模型,其参数在单独的训练过程中已预先优化。使用优化的参数,RSD对扫描图像中当前像素周围的局部窗口进行分类,并应用针对所选类别优化的滤镜。 RSD预测器的输出被视为对经过筛选的图像的一阶估计。修改后的SUSAN滤波器使用RSD的输出对原始扫描数据执行边缘保留平滑处理,并生成去网屏算法的最终输出。我们的方法不需要任何能产生打印原稿的筛选方法知识,例如筛选频率或抖动矩阵系数。所提出的方案不仅抑制了Moireacute伪像,而且还可以通过固有的锐化训练以对扫描的文档进行模糊处理。最后,一旦针对周期性聚类点半色调方法进行了优化,则可以使用相同的算法对包含随机误差扩散半色调噪声的半色调扫描图像进行反向

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