多焦点全光学2.0视频编码的可缩放内预测

Fan Jiang, Xin Jin, Tingting Zhong
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引用次数: 4

摘要

通过聚焦全光相机记录时变光场的Plenoptic 2.0视频有望用于沉浸式视觉应用,因为它可以在渲染的子孔径中以高空间分辨率捕获密集采样光场。本文提出了一种有效压缩多焦全光学2.0视频的帧内预测方法。在分析多焦全光相机成像原理的基础上,发现并利用了微像之间的变焦关系。在此基础上,提出了分块缩放和裁剪的方法,生成新的预测候选者进行加权预测。实验结果表明,该方法相对于HEVC和现有方法具有优越的性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Zoomable Intra Prediction for Multi-Focus Plenoptic 2.0 Video Coding
Plenoptic 2.0 videos that record time-varying light fields by focused plenoptic cameras are promising to immersive visual applications because of capturing dense sampled light fields with high spatial resolution in the rendered sub-apertures. In this paper, an intra prediction method is proposed for compressing multi-focus plenoptic 2.0 videos efficiently. Based on the imaging principle analysis of multi-focus plenoptic cameras, zooming relationships among the microimages are discovered and exploited by the proposed method. Positions of the prediction candidates and the zooming factors are derived, after which block zooming and tailoring are proposed to generate novel prediction candidates for weighted prediction. Experimental results demonstrated the superior performance of the proposed method relative to HEVC and state-of-the-art methods.
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