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Quality prediction of asymmetrically distorted stereoscopic images from single views

机译:单视场不对称失真立体图像的质量预测

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Objective quality assessment of distorted stereoscopic images is a challenging problem. Existing studies suggest that simply averaging the quality of the left- and right-views well predicts the quality of symmetrically distorted stereoscopic images, but generates substantial prediction bias when applied to asymmetrically distorted stereoscopic images. In this study, we first carry out a subjective test, where we find that the prediction bias could lean towards opposite directions, largely depending on the distortion types. We then develop an information-content and divisive normalization based pooling scheme that improves upon SSIM in estimating the quality of single view images. Finally, we propose a binocular rivalry inspired model to predict the quality of stereoscopic images based on that of the single view images. Our results show that the proposed model, without explicitly identifying image distortion types, successfully eliminates the prediction bias, leading to significantly improved quality prediction of stereoscopic images.
机译:失真的立体图像的客观质量评估是一个具有挑战性的问题。现有研究表明,简单地平均左视图和右视图的质量可以很好地预测对称失真的立体图像的质量,但是当应用于不对称失真的立体图像时会产生很大的预测偏差。在这项研究中,我们首先进行主观测试,发现预测偏差可能会朝相反的方向倾斜,这在很大程度上取决于失真类型。然后,我们开发一种基于信息内容和除法归一化的池化方案,该方案在估计单视图图像的质量方面改进了SSIM。最后,我们提出了一种基于双目竞争的模型,用于基于单视图图像的质量来预测立体图像的质量。我们的结果表明,所提出的模型在没有明确识别图像失真类型的情况下,成功消除了预测偏差,从而显着提高了立体图像的质量预测。

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