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Reconstruction of Bidirectional Predicted Residual for Stereoscopic Video Based on Compressed Sensing

机译:基于压缩感知的立体视频双向预测残差重构

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As an effective method applied in video processing, compressed sensing(CS) has gained wide interests. As we known, in traditional methods, if we want to recover a signal accurately from the samples, then the sampling rate has to be at least twice the maximum frequency present in the signal, which known as the Nyquist sampling rate. However, the sampling rate under the framework of compressed sensing can be much lower than the Nyquist sampling rate. As we will see in the remainder of this paper, CS asserts that we can recover certain signals from far few samples or measurements than traditional ways use. So as to save costs and improve efficiency, based on compressed sensing, we propose a reconstruction method for stereoscopic video codec. In our method, sparse residuals obtained by the block-based stereoscopic video processing and bidirectional prediction, are coded and reconstructed based on compressed sensing. Compared with other methods through simulation experiments, the proposed method reduces the sampling rate, and improves the quality of the reconstructed stereoscopic videos.
机译:作为一种有效的视频处理方法,压缩感知技术得到了广泛的关注。众所周知,在传统方法中,如果要从样本中准确恢复信号,则采样率必须至少是信号中存在的最大频率(奈奎斯特采样率)的两倍。但是,压缩感测框架下的采样率可能比奈奎斯特采样率低得多。正如我们将在本文的其余部分中看到的那样,CS断言,与传统方法相比,我们可以从很少的样本或测量中恢复某些信号。为了节省成本并提高效率,我们提出了一种基于压缩感知的立体视频编解码器重构方法。在我们的方法中,通过基于块的立体视频处理和双向预测获得的稀疏残差将基于压缩感知进行编码和重构。与通过仿真实验的其他方法相比,该方法降低了采样率,提高了重建立体视频的质量。

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