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Stereoscopic image quality assessment by deep convolutional neural network

机译:基于深度卷积神经网络的立体图像质量评估

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In this paper, we propose a no-reference (NR) quality assessment method for stereoscopic images by deep convolutional neural network (DCNN). Inspired by the internal generative mechanism (IGM) in the human brain, which shows that the brain first analyzes the perceptual information and then extract effective visual information. Meanwhile, in order to simulate the inner interaction process in the human visual system (HVS) when perceiving the visual quality of stereoscopic images, we construct a two-channel DCNN to evaluate the visual quality of stereoscopic images. First, we design a Siamese Network to extract high-level semantic features of left- and right-view images for simulating the process of information extraction in the brain. Second, to imitate the information interaction process in the HVS, we combine the high-level features of left- and right-view images by convolutional operations. Finally, the information after interactive processing is used to estimate the visual quality of stereoscopic image. Experimental results show that the proposed method can estimate the visual quality of stereoscopic images accurately, which also demonstrate the effectiveness of the proposed two-channel convolutional neural network in simulating the perception mechanism in the HVS. (C) 2018 Elsevier Inc. All rights reserved.
机译:本文提出了一种基于深度卷积神经网络(DCNN)的立体图像无参考(NR)质量评估方法。受人脑内部生成机制(IGM)的启发,这表明大脑首先分析感知信息,然后提取有效的视觉信息。同时,为了在感知立体图像的视觉质量时模拟人类视觉系统(HVS)的内部交互过程,我们构建了一个两通道DCNN来评估立体图像的视觉质量。首先,我们设计了一个暹罗网络来提取左视图和右视图图像的高级语义特征,以模拟大脑中信息的提取过程。其次,为了模仿HVS中的信息交互过程,我们通过卷积运算结合了左视图图像和右视图图像的高级功能。最后,交互处理后的信息用于估计立体图像的视觉质量。实验结果表明,所提出的方法能够准确估计立体图像的视觉质量,也证明了所提出的两通道卷积神经网络在模拟HVS中的感知机制方面的有效性。 (C)2018 Elsevier Inc.保留所有权利。

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