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Enhancing images with intensity-dependent spread functions

机译:增强具有依赖性传播功能的图像

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The theory of Intensity-Dependent Spread functions (IDS) is a model of the human visual system. The motivation behind IDS is to balance resolution and reliability. The system does this, but it also predicts many phenomena in human vision. IDS is a nonlinear, adaptive system that enhances edges, nonlinearly compresses dynamic ranges and automatically adjusts to local variations in intensity. It has a single free parameter, uses only additions in its on-line calculations and can be performed on a parallel processor. Another property of the system is that for inputs with only two intensities, e.g. disks, square waves and step edges, the output reduces exactly to one plus the convolution of the input with a bandpass filter whose passband is determined by the two intensities. For a Gaussian spread function the transfer function becomes the Difference-of-Gaussians (DoG) filter but the bandwidth set automatically by the input intensities. This paper demonstrates how IDS can be used for digital image enhancement. There is an artificial image that illustrates the characteristics of IDS processing and shows how the theoretical results translate into visual effects. There are also several realistic scenes that have been enhanced by IDS.
机译:依赖于强度的传播函数(ID)的理论是人类视觉系统的模型。 ID背后的动机是平衡分辨率和可靠性。该系统做到这一点,但它也预测了人类视力中的许多现象。 ID是一个非线性的自适应系统,其增强边缘,非线性压缩动态范围,并自动调整到强度的局部变化。它具有单个免费参数,仅在其在线计算中使用添加,并且可以在并行处理器上执行。该系统的另一个属性是仅具有两个强度的输入,例如输入。磁盘,方波和步进边缘,输出完全减少了一个加上输入的卷积,其中带通滤波器由两个强度确定的通带。对于高斯传播功能,传递函数成为高斯(DOG)过滤器,但是输入强度自动设置的带宽。本文演示了IDS如何用于数字图像增强。存在一个人工图像,其示出了IDS处理的特性,并展示了理论结果如何转化为可视效果。 IDS还有几种逼真的场景。

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