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Secret-Key Generation Using Correlated Sources and Channels

机译:使用相关源和通道生成密钥

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We study the secret-key capacity in a joint source-channel coding setup—the terminals are connected over a discrete memoryless channel and have access to side information, modelled as a pair of discrete memoryless source sequences. As our main result, we establish the upper and lower bounds on the secret-key capacity. In the lower bound expression, the equivocation terms of the source and channel components are functionally additive even though the coding scheme generates a single secret-key by jointly taking into account the source and channel equivocations. Our bounds coincide, thus establishing the capacity, when the underlying wiretap channel can be decomposed into a set of independent, parallel, and reversely degraded channels. For the case of parallel Gaussian channels and jointly Gaussian sources we show that Gaussian codebooks achieve the secret-key capacity. In addition, when the eavesdropper also observes a correlated side information sequence, we establish the secret-key capacity when both the source and channel of the eavesdropper are a degraded version of the legitimate receiver. We finally also treat the case when a public discussion channel is available, propose a separation based coding scheme, and establish its optimality when the channel output symbols of the legitimate receiver and eavesdropper are conditionally independent given the input.
机译:我们在联合源通道编码设置中研究密钥容量-终端通过离散的无记忆通道连接,并可以访问辅助信息,这些信息建模为一对离散的无记忆源序列。作为主要结果,我们确定了密钥容量的上限和下限。在下限表达式中,即使编码方案通过共同考虑源和通道等效项来生成单个密钥,源和通道组件的等效项在功能上也是可加的。当基础的窃听通道可以分解为一组独立的,并行的和反向降级的通道时,我们的界限是一致的,从而建立了容量。对于并行的高斯信道和联合的高斯源,我们证明高斯码本达到了密钥容量。另外,当窃听者还观察到相关的辅助信息序列时,当窃听者的源和通道都是合法接收者的降级版本时,我们将建立密钥容量。最后,当公开讨论频道可用时,我们也要处理这种情况,提出一种基于分隔的编码方案,并在合法接收者和窃听者的频道输出符号在给定输入条件下独立的情况下确定其最优性。

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