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首页> 外文期刊>Proceedings of the National Academy of Sciences, India, Section A. Physical Sciences >A Novel Strong Decorrelation Approach for Image Subband Coding Using Polynomial EVD Algorithms
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A Novel Strong Decorrelation Approach for Image Subband Coding Using Polynomial EVD Algorithms

机译:小说强烈的解相关方法的形象子带编码使用多项式EVD算法

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Subband coding is a popular technique to achieve multichannel data compression and efficient data transmission in image and video communications. In this paper, we focus on designing a data-dependent image subband coder which divides the image into strongly (total) decorrelated and spectrally majorized subbands, which seeks to reduce the redundancy to achieve better compression and efficient transmission. To achieve strong decorrelation and spectral majorization between the subbands, we adopt a set of new iterative polynomial eigenvalue decomposition (PEVD) algorithms: sequential matrix diagonalization (SMD) and maximum element sequential matrix diagonalization (ME-SMD). Using this SMD-based PEVD approach, we design the data dependent subband coder (DDSC) for image subband coding. We compare the performance of the proposed SMD/ME-SMD algorithms with the existing DDSC methods like SBR2, SBR2C, K-L transform (KLT) coder and data independent subband coder (DISC)-based discrete wavelet transform (DWT) technique. To measure the performance, we use the parameters like coding gain, correlation coefficient, MSE (mean square error) and peak signal-to-noise ratio (PSNR). The presented simulation results for standard images in the absence of quantization show that the proposed SMD-based PEVD technique performs far better than the existing techniques.
机译:子带编码是一个受欢迎的技术实现多通道数据压缩和有效的数据在图像和视频通信传输。在本文中,我们专注于设计视图像子带编码器的分歧(总)decorrelated和图像为强烈幽灵似地优化部分波段,寻求减少冗余实现更好压缩和有效的传播。实现强大的解相关和谱部分波段之间的优化,我们采用一组新的迭代多项式特征值分解(PEVD)算法:顺序矩阵对角化(SMD)和最大元素顺序矩阵对角化(ME-SMD)。这SMD-based PEVD方法,我们设计数据相关的子带编码器(DDSC)部分波段图像编码。提出了SMD / ME-SMD算法与现有的DDSC方法像SBR2、SBR2C K-L变换(KLT)编码器和数据独立的子带编码器(盘)的离散小波变换(DWT)技术。参数编码增益,相关性系数,MSE(均方误差)和峰值信噪比(PSNR)。标准图像的仿真结果缺乏量化表明,该SMD-based PEVD技术执行远比现有的技术。

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