超级计算机海洋模型的小波变换矢量量化压缩

J. Bradley, C. Brislawn
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引用次数: 14

摘要

一种用于存储和传输目的的有效压缩数字信息的新方法包括对数据集进行离散小波变换子带分解,然后使用特定应用的矢量量化器对小波变换系数进行矢量量化。矢量量化器的设计通过最小化受总体比特率和编码器复杂性约束的指数率失真函数,优化了存储资源和矢量维度对变换子带的分配。该方法同样适用于其他具有一定平滑度的多维数据集的压缩。作者讨论了使用这种技术来压缩全球气候模式的超级计算机模拟的输出。这里展示的数据来自国家大气研究中心的Semtner-Chervin全球海洋模型。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Wavelet transform-vector quantization compression of supercomputer ocean models
A new procedure for efficient compression of digital information for storage and transmission purposes involves a discrete wavelet transform subband decomposition of the data set, followed by vector quantization of the wavelet transform coefficients using application-specific vector quantizers. The vector quantizer design optimizes the assignment of both memory resources and vector dimensions to the transform subbands by minimizing an exponential rate-distortion functional subject to constraints on both overall bit-rate and encoder complexity. The method is applicable to the compression of other multidimensional data sets possessing some degree of smoothness. The authors discuss the use of this technique for compressing the output of supercomputer simulations of global climate models. The data presented here comes from Semtner-Chervin global ocean models run at the National Center for Atmospheric Research.<>
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