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Alpha stable modeling of human visual systems for digital halftoning in rectangular and hexagonal grids

机译:人类视觉系统的Alpha稳定建模,用于在矩形和六边形网格中进行数字半色调

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摘要

Human visual system (HVS) modeling has become a critical component in the design of digital halftoning algorithms. Methods that exploit the characteristics of the HVS include the direct binary search (DBS) and optimized tone-dependent halftoning approaches. The spatial sensitivity of the HVS is low-pass in nature, reflecting the physiological characteristics of the eye. Several HVS models have been proposed in the literature, among them, the broadly used Naesaenen's exponential model, which was later shown to be constrained in shape. Richer models are needed to attain better halftone attributes and to control the appearance of undesired patterns. As an alternative, models based on the mixture of bivariate Gaussian density functions have been proposed. The mathematical characteristics of the HVS model thus play a key role in the synthesis of model-based halftoning. In this work, alpha stable functions, an elegant class of functions richer than mixed Gaussians, are exploited to design HVS models to be used in two different contexts: monochrome halftoning over rectangular and hexagonal sampling grids. In the two scenarios, alpha stable models prove to be more efficient than Gaussian mixtures, as they use less parameters to characterize the tails and bandwidth of the model. It is shown that a decrease in the model's bandwidth leads to homogeneous halftone patterns, and conversely, models with heavier tails yield smoother textures. These characteristics, added to their simplicity, make alpha stable models a powerful tool for HVS characterization.
机译:人类视觉系统(HVS)建模已成为数字半色调算法设计中的关键组成部分。利用HVS特性的方法包括直接二进制搜索(DBS)和优化的依赖于色调的半色调方法。 HVS的空间敏感性本质上是低通的,反映了眼睛的生理特征。文献中已经提出了几种HVS模型,其中包括广泛使用的Naesaenen指数模型,后来证明其形状受到限制。需要更丰富的模型来获得更好的半色调属性并控制不良图案的出现。作为替代方案,已经提出了基于二元高斯密度函数混合的模型。因此,HVS模型的数学特征在基于模型的半色调合成中起着关键作用。在这项工作中,利用alpha稳定函数(一种比混合高斯函数更丰富的优雅函数)来设计HVS模型,以用于两种不同的情况:矩形和六边形采样网格上的单色半色调。在这两种情况下,事实证明,α稳定模型比高斯混合模型效率更高,因为它们使用较少的参数来表征模型的尾部和带宽。结果表明,模型带宽的减小会导致均匀的半色调图案,相反,尾部较重的模型会产生更平滑的纹理。这些特性,加上其简单性,使alpha稳定模型成为HVS表征的强大工具。

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