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通过学习双目视觉特性对立体图像进行全参考质量评估。

Full-reference quality assessment of stereoscopic images by learning binocular visual properties.

作者信息

Ma Jian, An Ping, Shen Liquan, Li Kai

出版信息

Appl Opt. 2017 Oct 10;56(29):8291-8302. doi: 10.1364/AO.56.008291.

Abstract

Stereoscopic imaging technology has been growingly prevalent driven by both the entertainment industry and scientific applications in today's world. But objective quality assessment of stereoscopic images is a challenging task. In this paper, we propose a novel stereoscopic image quality assessment (SIQA) method by jointly considering monocular perception and binocular interaction. As the most significant contribution of this study, binocular perceptual properties of simple and complex cells are considered for full-reference (FR) SIQA. Specifically, the proposed scheme first simulates the receptive fields of simple cells (one class of V1 neurons) using a push-pull combination of receptive fields response, which is used to represent a monocular cue. Further, the receptive fields of complex cells (the other class of V1 neurons) are simulated by using binocular energy response and binocular rivalry response, which are used to represent a binocular cue. Subsequently, various quality-aware features are extracted from the response of area V1 by calculating the self-weighted histogram of the local binary pattern on four types of feature maps of similarity measurement that will change in the presence of distortions. Finally, kernel ridge regression is used to simulate a nonlinear relationship between the quality-aware features and objective quality scores. The performance of our method is evaluated over popular stereoscopic image databases and shown to be competitive with the state-of-the-art FR SIQA algorithms.

摘要

在当今世界,受娱乐产业和科学应用的推动,立体成像技术越来越普遍。但是,立体图像的客观质量评估是一项具有挑战性的任务。在本文中,我们通过联合考虑单眼感知和双眼交互,提出了一种新颖的立体图像质量评估(SIQA)方法。作为本研究最重要的贡献,在全参考(FR)SIQA中考虑了简单细胞和复杂细胞的双眼感知特性。具体而言,所提出的方案首先使用感受野响应的推挽组合来模拟简单细胞(一类V1神经元)的感受野,该组合用于表示单眼线索。此外,通过使用双眼能量响应和双眼竞争响应来模拟复杂细胞(另一类V1神经元)的感受野,它们用于表示双眼线索。随后,通过计算在存在失真时会发生变化的四种相似性测量特征图上的局部二值模式的自加权直方图,从V1区域的响应中提取各种质量感知特征。最后,使用核岭回归来模拟质量感知特征与客观质量得分之间的非线性关系。我们的方法在流行的立体图像数据库上进行了评估,结果表明它与当前最先进的FR SIQA算法具有竞争力。

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