Lossy to Lossless Spatially Scalable Depth Map Coding with Cellular Automata

L. Cappellari, Carlos Cruz-Reyes, G. Calvagno, J. Kari
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引用次数: 13

Abstract

Spatially scalable image coding algorithms are mostly based on linear filtering techniques that give a multi-resolution representation of the data. Reversible cellular automata can be instead used as simpler, non-linear filter banks that give similar performance. In this paper, we investigate the use of reversible cellular automata for lossy to lossless and spatially scalable coding of smooth multi-level images, such as depth maps. In a few cases, the compression performance of the proposed coding method is comparable to that of the JBIG standard, but, under most test conditions, we show better compression performances than those obtained with the JBIG or the JPEG2000 standards. The results stimulate further investigation into cellular automata-based methods for multi-level image compression.
基于元胞自动机的有损到无损空间可扩展深度图编码
空间可扩展的图像编码算法主要基于线性滤波技术,该技术提供了数据的多分辨率表示。可逆元胞自动机可以作为更简单的非线性滤波器组,提供类似的性能。在本文中,我们研究了可逆元胞自动机在光滑多级图像(如深度图)的有损到无损和空间可扩展编码中的应用。在少数情况下,所提出的编码方法的压缩性能与JBIG标准相当,但在大多数测试条件下,我们显示出比JBIG或JPEG2000标准获得的压缩性能更好。这些结果激发了对基于元胞自动机的多级图像压缩方法的进一步研究。
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