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From low level perception to high level perception, a coherent approach for visual attention modeling

机译:从低水平的感知到高水平感知,视觉造型的相干方法

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The saliency-based or bottom-up model of visual attention presented in this paper deals with still color images. The model we built is based on numerous properties of the human visual system (HVS), thus providing a biologically plausible system. The computation of early visual features such as color and orientation is a key step for any bottom-up model and the way to extract these visual features easily permits to differentiate a model from an other. The novelty of the proposed approach lies on the fact that the computation of early visual features is fully based on a HVS model consisting in projecting the picture into an opponent-colors space, applying a perceptual decomposition, contrast sensitivity and masking functions. Moreover, a strategy essentially based on a center surround mechanism and on the perceptual grouping phenomena underscores conspicuous locations by combining visual feature maps. A saliency map which is defined as a 2D topographic representation of conspicuity is then deduced. The model is applied to a number of natural images. Our results are then compared with the results of a well-know bottom-up model.
机译:本文介绍了显着或自下而上模型的视觉关注涉及静态图像。我们构建的模型基于人类视觉系统(HV)的许多特性,从而提供生物合理的系统。诸如颜色和​​方向之类的早期视觉特征的计算是任何自下而上模型的关键步骤,以及提取这些视觉特征的方式容易允许从另一个的模型区分模型。所提出的方法的新颖性在于,早期视觉特征的计算完全基于包括将图像投入到对手颜色空间的HVS模型,应用感知分解,对比度灵敏度和掩蔽功能。此外,通过组合视觉特征映射,基本上基于中心环绕机制和感知分组现象的策略来解除显眼位置。然后推导出定义为CinapiCuity的2D地形表示的显着图。该模型应用于许多自然图像。然后将结果与众所周知的自下而上模型进行比较。

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