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A Computational Texture Masking Model for Natural Images Based on Adjacent Visual Channel Inhibition

机译:基于相邻视觉通道抑制的自然图像计算纹理掩盖模型

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Masking is a perceptual effect in which contents of the image reduce the ability of the observer to see the target signals hidden in the image. Characterization of masking effects plays an important role in modern image quality assessment (IQA) algorithms. In this work, we attribute the reduced sensitivity to the inhibition imposed by adjacent visual channels. In our model, each visual channel is excited by the contrast difference between the reference and distorted image in the corresponding channel and suppressed by the activities of the mask in adjacent channels. The model parameters are fitted to the results of a psychophysical experiment conducted with a set of different natural texture masks. Cross-validation is performed to demonstrate the model's performance in predicting the target detection threshold. The results of this work could be applied to improve the performance of current HVS-based IQA algorithms.
机译:掩蔽是一种感知效果,其中图像的内容会降低观察者查看隐藏在图像中的目标信号的能力。掩蔽效果的表征在现代图像质量评估(IQA)算法中起着重要作用。在这项工作中,我们将灵敏度降低归因于相邻视觉通道的抑制作用。在我们的模型中,每个视觉通道都受到相应通道中参考图像和失真图像之间的对比度差异的激发,并被相邻通道中蒙版的活动所抑制。模型参数适合使用一组不同的自然纹理蒙版进行的心理物理实验的结果。进行交叉验证以证明模型在预测目标检测阈值方面的性能。这项工作的结果可用于改善当前基于HVS的IQA算法的性能。

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