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Weighted universal bit allocation: optimal multiple quantization matrix coding

机译:加权通用比特分配:最优多重量化矩阵编码

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We introduce a two-stage bit allocation algorithm analogous to the algorithm for weighted universal vector quantization (WUVQ). The encoder uses a collection of possible bit allocations (typically in the form of a collection of quantization matrices) rather than a single bit allocation (or single quantization matrix). We describe both an encoding algorithm for achieving optimal compression using a collection of bit allocations and a technique for designing locally optimal collections of bit allocations. We demonstrate performance on a JPEG style coder using the mean squared error (MSE) distortion measure. On a sequence of medical brain scans, the algorithm achieves up to 2.5 dB improvement over a single bit allocation system, up to 5 dB improvement over a WUVQ with first- and second-stage vector dimensions equal to 16 and 4 respectively, and up to 12 dB improvement over an entropy constrained vector quantizer (ECVQ) using 4 dimensional vectors.
机译:我们介绍一种类似于加权通用矢量量化(WUVQ)算法的两阶段位分配算法。编码器使用可能的比特分配的集合(通常以量化矩阵的集合的形式),而不是单个比特分配(或单个量化矩阵)。我们描述了一种使用位分配集合来实现最佳压缩的编码算法,以及一种用于设计位分配的局部最优集合的技术。我们使用均方误差(MSE)失真度度量来演示JPEG样式编码器的性能。在一系列医学脑部扫描中,该算法与单个位分配系统相比,最多可提高2.5 dB,与第一阶段和第二阶段向量尺寸分别等于16和4的WUVQ相比,最高可提高5 dB。与使用4维矢量的熵约束矢量量化器(ECVQ)相比,提高了12 dB。

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