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Disparity-based just-noticeable-difference model for perceptual stereoscopic video coding using depth of focus blur effect

机译:基于焦深模糊效果的基于视差的感知立体视频编码模型

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摘要

Human 3D perception provides an important clue to the removal of redundancy in stereoscopic 3D (S3D) videos. Because objects outside the binocular fusion limit cannot be fused on retina, the human visual system (HVS) makes them blur according to the depth-of-focus (DOF) effect to increase the binocular fusion limit and suppress diplopia, i.e. double vision. Based on human depth perception, we propose a disparity-based just-noticeable-difference model (DJND) to save bit-rate and improve visual comfort in S3D videos. We combine the DOF blur effect with conventional JND models in the pixel domain into DJND. Firstly, we use disparity information to get the average disparity value of each block. Then, we integrate the DOF blur effect into luminance JND (LJND) by a selective low pass Gaussian filter to minimize the visual stimulus in S3D videos. Finally, we incorporate disparity information into the filtered JND models to obtain DJND. Experimental results demonstrate that the proposed method successfully improves both image quality and visual comfort in viewing S3D videos without increasing the bit-rate.
机译:人类3D感知为消除立体3D(S3D)视频中的冗余提供了重要线索。由于无法将超出双眼融合极限的物体融合到视网膜上,因此人类视觉系统(HVS)会根据景深(DOF)效果使它们模糊,以增加双眼融合极限并抑制复视,即复视。基于人类的深度感知,我们提出了一种基于视差的正好可察觉的差异模型(DJND),以节省比特率并提高S3D视频的视觉舒适度。我们将DOF模糊效果与像素域中的常规JND模型结合到DJND中。首先,我们使用视差信息来获取每个块的平均视差值。然后,我们通过选择性低通高斯滤波器将DOF模糊效果整合到亮度JND(LJND)中,以最大程度地减少S3D视频中的视觉刺激。最后,我们将视差信息合并到过滤后的JND模型中以获得DJND。实验结果表明,所提出的方法在不增加比特率的情况下成功提高了观看S3D视频时的图像质量和视觉舒适度。

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