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Progressive 3D mesh compression using MOG-based Bayesian entropy coding and gradual prediction

机译:使用基于MOG的贝叶斯熵编码和渐进预测进行渐进式3D网格压缩

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A progressive 3D triangular mesh compression algorithm built on the MOG-based Bayesian entropy coding and the gradual prediction scheme is proposed in this work. For connectivity coding, we employ MOG models to estimate the posterior probabilities of topology symbols given vertex geometries. Then, we encode the topology symbols using an arithmetic coder with different contexts, which depend on the posterior probabilities. For geometry coding, we propose the gradual prediction labeling and the dual-ring prediction to divide vertices into groups and predict later groups more efficiently using the information in already encoded groups. Simulation results demonstrate that the proposed algorithm provides significantly better performance than the conventional wavemesh coder, with the average bit rate reduction of about 16.9 %.
机译:本文提出了一种基于基于MOG的贝叶斯熵编码和渐进预测方案的渐进式3D三角网格压缩算法。对于连通性编码,我们使用MOG模型来估计给定顶点几何形状的拓扑符号的后验概率。然后,我们使用具有不同上下文的算术编码器对拓扑符号进行编码,这取决于后验概率。对于几何编码,我们提出了逐步预测标记和双环预测,以将顶点划分为组,并使用已编码组中的信息更有效地预测后面的组。仿真结果表明,与传统的Wavemesh编码器相比,该算法具有更好的性能,平均比特率降低了约16.9%。

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