Günlü Onur, Schaefer Rafael F, Boche Holger, Poor Harold Vincent
Information Coding Division, Linköping University, 58183 Linköping, Sweden.
Chair of Information Theory and Machine Learning, Technische Universität Dresden, 01062 Dresden, Germany.
Entropy (Basel). 2022 Nov 24;24(12):1716. doi: 10.3390/e24121716.
We extend the problem of secure source coding by considering a remote source whose noisy measurements are correlated random variables used for secure source reconstruction. The main additions to the problem are as follows: (1) all terminals noncausally observe a noisy measurement of the remote source; (2) a private key is available to all legitimate terminals; (3) the public communication link between the encoder and decoder is rate-limited; and (4) the secrecy leakage to the eavesdropper is measured with respect to the encoder input, whereas the privacy leakage is measured with respect to the remote source. Exact rate regions are characterized for a lossy source coding problem with a private key, remote source, and decoder side information under security, privacy, communication, and distortion constraints. By replacing the distortion constraint with a reliability constraint, we obtain the exact rate region for the lossless case as well. Furthermore, the lossy rate region for scalar discrete-time Gaussian sources and measurement channels is established. An achievable lossy rate region that can be numerically computed is also provided for binary-input multiple additive discrete-time Gaussian noise measurement channels.
我们通过考虑一个远程源来扩展安全源编码问题,该远程源的噪声测量值是用于安全源重构的相关随机变量。该问题的主要新增内容如下:(1) 所有终端非因果地观测远程源的噪声测量值;(2) 所有合法终端可获得一个私钥;(3) 编码器和解码器之间的公共通信链路有速率限制;(4) 向窃听者的保密泄漏是相对于编码器输入进行度量的,而隐私泄漏是相对于远程源进行度量的。针对在安全性、隐私性、通信和失真约束下具有私钥、远程源和解码器边信息的有损源编码问题,确定了精确的速率区域。通过用可靠性约束代替失真约束,我们也得到了无损情况下的精确速率区域。此外,还建立了标量离散时间高斯源和测量信道的有损速率区域。对于二进制输入的多个加性离散时间高斯噪声测量信道,还提供了一个可通过数值计算得到的可达有损速率区域。