具有深度图失真的三维合成视图的质量评估

Chang-Ting Tsai, H. Hang
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引用次数: 20

摘要

大多数现有的三维图像质量指标使用二维图像质量评估(IQA)模型来预测三维主观质量。但是在自由视点电视(FTV)系统中,由于使用基于深度图像渲染(DIBR)技术,深度图误差往往会在合成图像上产生物体移动或鬼影。这些伪影与普通的2D失真(如模糊、高斯噪声和压缩误差)非常不同。因此,我们提出了一种新的3D质量度量来评估立体图像的质量,这些图像可能包含由渲染过程中由于深度图错误而引入的伪影。在应用通常的2D度量之前,我们首先消除对象内部的一致像素偏移。实验结果表明,该方法增强了客观质量评分与三维主观评分的相关性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Quality assessment of 3D synthesized views with depth map distortion
Most existing 3D image quality metrics use 2D image quality assessment (IQA) models to predict the 3D subjective quality. But in a free viewpoint television (FTV) system, the depth map errors often produce object shifting or ghost artifacts on the synthesized pictures due to the use of Depth Image Based Rendering (DIBR) technique. These artifacts are very different from the ordinary 2D distortions such as blur, Gaussian noise, and compression errors. We thus propose a new 3D quality metric to evaluate the quality of stereo images that may contain artifacts introduced by the rendering process due to depth map errors. We first eliminate the consistent pixel shifts inside an object before the usual 2D metric is applied. The experimental results show that the proposed method enhances the correlation of the objective quality score to the 3D subjective scores.
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