High-resolution distributed functional quantization

Vinith Misra, V. K. Goyal, L. Varshney
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Abstract

In traditional modes of lossy compression, attaining low distortion letter-by-letter on a vector of source letters X1 N=(X1, X2,..., XN)isinRopfN is the implicit aim. We consider here instead the goal of estimating at the destination a function G(X1 N) of the source data under the constraint that each Xi must be separately scalar quantized. The design of optimal fixed- and variable-rate scalar quantizers is considered under the assumptions of high-resolution quantization theory, yielding optimal point densities for regular quantizers. Additionally, we consider how performance scales with N for certain classes of functions. This demonstrates potentially large improvement from consideration of G in the quantizer design.
高分辨率分布式功能量化
在传统的有损压缩模式中,在源字母X1 N=(X1, X2,…)的矢量上逐字母实现低失真。ropfn是隐含的目标。在高分辨率量化理论的假设下,考虑了最优固定速率和可变速率标量量化器的设计,给出了正则量化器的最优点密度。此外,我们还考虑了某些函数类的性能如何随N的变化而变化。这表明在量化器设计中考虑G可能会有很大的改进。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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