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An improved model of pixel adaptive just-noticeable difference estimation

机译:一种改进的像素自适应正差估计模型

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A pixel-wise adaptive model for estimating the just-noticeable difference (JND) in spatial domain is proposed in this paper. As the human visual system (HVS) can be considered as a multichannel system, we assume that there exist two channels in the HVS, which deliver luminance adaption factor and texture masking factor, respectively. Both channels affect the JND threshold in a cooperative manner. The texture regions are with abundant redundancy and can tolerate much noise. The disorder degree and spatial masking of the texture are considered to estimate the texture masking effect, for deducing such JND threshold that coincides with the HVS. Finally, the luminance adaptation factor and texture masking factor are combined nonlinearly. Various experiments confirm the improved model has a better visual effect than models proposed before.
机译:提出了一种像素空间自适应模型,用于估计空间域中的正好可察觉的差异(JND)。由于人类视觉系统(HVS)可以看作是多通道系统,因此我们假设HVS中存在两个通道,分别传递亮度适应因子和纹理遮盖因子。两个通道以协作方式影响JND阈值。纹理区域具有丰富的冗余并且可以忍受很多噪声。考虑纹理的无序度和空间掩蔽来估计纹理掩蔽效果,以推导与HVS一致的这种JND阈值。最后,将亮度适应因子和纹理掩蔽因子非线性组合。各种实验证实,改进的模型比以前提出的模型具有更好的视觉效果。

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