基于人眼视觉系统视觉通路的无参考立体图像质量评价

F. Meng, Sumei Li
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引用次数: 0

摘要

随着立体成像技术的发展,立体图像质量评估(SIQA)逐渐受到重视,双目视图之间复杂的关系使如何设计出符合人类视觉感知的方法充满了挑战。本文首先构建了基于人类视觉系统视觉通路的卷积神经网络(CNN),该网络模拟了视交叉、外侧膝状核(LGN)和视觉皮层等视觉通路的不同部分;其次,我们的方法的两条路径分别模拟了“什么”和“在哪里”的视觉路径,它们被赋予了不同的特征提取能力。最后,我们找到了一种不同的3d卷积的应用方式,利用它融合了左右视图的信息,而不仅仅是提取视频中的时间特征。实验结果表明,该方法更符合主观评分,具有较好的泛化性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
No-Reference Stereoscopic Image Quality Assessment Based on The Visual Pathway of Human Visual System
With the development of stereoscopic imaging technology, stereoscopic image quality assessment (SIQA) has gradually been more and more important, and how to design a method in line with human visual perception is full of challenges due to the complex relationship between binocular views. In this article, firstly, convolutional neural network (CNN) based on the visual pathway of human visual system (HVS) is built, which simulates different parts of visual pathway such as the optic chiasm, lateral geniculate nucleus (LGN), and visual cortex. Secondly, the two pathways of our method simulate the ‘what’ and ‘where’ visual pathway respectively, which are endowed with different feature extraction capabilities. Finally, we find a different application way for 3D-convolution, employing it fuse the information from left and right view, rather than just extracting temporal features in video. The experimental results show that our proposed method is more in line with subjective score and has good generalization.
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