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Improved Optimum Nonnegative Integer Bit Allocation Algorithm Using Fuzzy Domain Variance Estimation and Refinement for the Wavelet-Based Image Compression

机译:利用模糊域方差估计和基于小波的图像压缩改进的最佳非负整数位分配算法

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Optimum nonnegative integer bit allocation (ONIBA) is a conspicuous technique, which usually provides the solution of optimal quantization issues for the transform coders (TCs). In order to obtain the optimum bits for a specific quantizer, all the existing ONIBA algorithms strongly rely on the variance characteristics of transform coefficients. Typically, in the wavelet-based TCs, the sub-band variances are directly estimated in the wavelet domain. This direct variance estimation is not supposed to be the best way to obtain the exact variance information, because the practical values of the wavelet coefficients may not be precise and therefore constitute an uncertain environment for the accurate variance estimation. Consequently, all the existing ONIBA algorithms often exhibit poor quantization performance in the presence of entropy coder. Hence, this paper presents a new fuzzy domain variance estimation and refinement (FDVER)-based ONIBA algorithm to attain the real optimum quantization of the wavelet coefficients in the presence of entropy coder. The outcome shows that the proposed FDVER-ONIBA algorithm outperforms and provides high-quality image compression along with the significant bitrate savings by the efficient quantization of the wavelet coefficients as compared to the existing common sub-band coding technique and the recent ONIBA algorithms.
机译:最佳的非负整数位分配(ONIBA)是一种显着的技术,它通常为变换编码器(TCS)提供最佳量化问题的解决方案。为了获得特定量化器的最佳位,所有现有的ONIBA算法都强烈地依赖于变换系数的方差特性。通常,在基于小波的TCS中,在小波域中直接估计子带差异。这种直接方差估计不应该是获得确切方差信息的最佳方法,因为小波系数的实际值可能不是精确的,因此构成了用于准确方差估计的不确定环境。因此,所有现有的ONIBA算法通常在熵编码器的存在下通常表现出差的量化性能。因此,本文提出了基于熵编码器存在的基于oniba算法的新模糊域方差估计和改进(FDVER),以获得小波系数的真正最佳量化。结果表明,与现有的公共子带编码技术和最近的ONIBA算法相比,所提出的FDVER-ONIBA算法优于和提供高质量的图像压缩,并提供高质量的比特率通过小波系数的量化。

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