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View Synthesis Distortion Estimation With a Graphical Model and Recursive Calculation of Probability Distribution

机译:图形模型的视图综合失真估计和概率分布的递归计算

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Depth-image-based rendering (DIBR) is frequently used in multiview video applications such as free-viewpoint television. In this paper, we consider the two DIBR algorithms used in the Moving Picture Experts Group view synthesis reference software, and develop a scheme for the encoder to estimate the distortion of the synthesized virtual view at the decoder when the reference texture and depth sequences experience transmission errors such as packet loss. We first develop a graphical model to analyze how random errors in the reference depth image affect the synthesized virtual view. The warping competition rule adopted in the DIBR algorithms is explicitly represented by the graphical model. We then consider the case where packet loss occurs to both the encoded texture and depth images during transmission and develop a recursive optimal distribution estimation (RODE) method to calculate the per-pixel texture and depth probability distributions in each frame of the reference views. The RODE is then integrated with the graphical model method to estimate the distortion in the synthesized view caused by packet loss. Experimental results verify the accuracy of the graphical model method, the RODE, and the combined estimation scheme.
机译:基于深度图像的渲染(DIBR)经常用于多视点视频应用程序中,例如自由视点电视。在本文中,我们考虑了“运动图像专家组”视图合成参考软件中使用的两种DIBR算法,并为编码器开发了一种方案,用于在参考纹理和深度序列经历传输时在解码器处估计合成虚拟视图的失真。错误,例如丢包。我们首先开发一个图形模型来分析参考深度图像中的随机误差如何影响合成的虚拟视图。图形模型明确表示了DIBR算法中采用的翘曲竞争规则。然后,我们考虑在传输过程中编码纹理和深度图像同时发生丢包的情况,并开发了一种递归最优分布估计(RODE)方法,以计算参考视图各帧中每个像素的纹理和深度概率分布。然后将RODE与图形模型方法集成在一起,以估计由数据包丢失引起的合成视图中的失真。实验结果验证了图形模型方法,RODE和组合估计方案的准确性。

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