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Optimal rate allocation for entropy-coded uniform scalar quantization of dependent sources in nonbinary hypothesis testing

机译:非二进制假设检验中依赖源的熵编码统一标量量化的最优速率分配

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摘要

We propose a closed-form rate allocation scheme (RAS) for entropy-coded uniform scalar quantization of dependent sources in classification problems. The proposed RAS is applicable to nonbinary classification with piecewise monotonic unquantized Bayes decision boundaries. The RAS is also extended to joint compression and classification.
机译:我们提出了一种封闭形式的速率分配方案(RAS),用于分类问题中相关源的熵编码统一标量量化。提出的RAS适用于具有分段单调未量化贝叶斯决策边界的非二进制分类。 RAS还扩展到联合压缩和分类。

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