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Lossy-to-lossless progressive coding of depth-map images using competing constant and planar models

机译:使用竞争常数和平面模型对深度图图像进行无损无损渐进编码

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In this paper we propose an extension of our lossy-to-lossless progressive coding method by placing the planar model in a competition with the piecewise constant model during the region reconstruction stage of the algorithm. A sequence of lossy images is generated using an hierarchical segmentation, of the initial image, based on region merging. The progressive coding method is able to compress this sequence of images by encoding the elements that represent the differences between two consecutive images. The method is splitting some regions from the current image segmentation using an encoded set of contours, and it is defining a set of new regions, which are reconstructed using either the piecewise constant model or the planar model. An efficient solution is proposed for encoding the model parameters in a progressive way. Results show an improvement of 3 - 4 dB compared to the baseline method based only on constant regions, and for a wide range it achieves almost similar results with the non-progressive methods.
机译:在本文中,我们提出了一种有损无损渐进编码方法的扩展,方法是在算法的区域重构阶段将平面模型与分段常数模型竞争,从而将其置于竞争状态。基于区域合并,使用初始图像的分层分割来生成一系列有损图像。渐进编码方法能够通过对表示两个连续图像之间差异的元素进行编码来压缩此图像序列。该方法使用一组已编码的轮廓线从当前图像分割中分离出一些区域,并定义了一组新区域,这些新区域可使用分段常数模型或平面模型进行重构。提出了一种有效的解决方案,用于以渐进方式对模型参数进行编码。结果表明,与仅基于恒定区域的基线方法相比,基线提高了3-4 dB,并且在较宽的范围内,与非渐进方法相比,可获得几乎相似的结果。

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