In this paper, we consider multiple cache-enabled end-users connected to multiple transmitters through a linear network. We also prevent a totally passive eavesdropper, who sniffs the packets in the delivery phase, from obtaining any information about the original files in cache-aided networks. Three different secure centralized multi-transmitter coded caching scenarios namely, secure multi-transmitter coded caching, secure multi-transmitter coded caching with reduced subpacketization, and secure multi-transmitter coded caching with reduced feedback, are considered and closed-form coding delay and secret shared key storage expressions are provided. As our security guarantee, we show that the delivery phase does not reveal any information to the eavesdropper using the mutual information metric. Moreover, we investigate the secure decentralized multi-transmitter coded caching scenario, in which there is no cooperation between the clients and transmitters during the cache content placement phase and study its performance compared to the centralized scheme. We analyze the system's performance in terms of Coding Delay and guarantee the security of our presented schemes using the Mutual Information metric. Numerical evaluations verify that security incurs a negligible cost in terms of memory usage when the number of files and users are scaled up, in both centralized and decentralized scenarios. Also, we numerically show that by increasing the number of files and users, the secure coding delay of centralized and decentralized schemes became asymptotically equal.
翻译:在本文中,我们考虑通过线性网络连接多个发报机的多个缓存式终端用户。 我们还防止一个完全被动的窃听器,在交付阶段嗅探资料包,无法获取关于缓存辅助网络原始文件的任何信息。 三种不同的安全中央多传输码编码缓存假设,即安全的多传输码缓存,安全的多传输码缓存,安全的多传输码缓存,分包分解的分解码缓存,以及安全的多传输码缓存,反馈减少,我们考虑和闭式编码延迟,并提供秘密的共享密钥存储表达式。正如我们的安全保证,我们表明交付阶段没有利用共同信息衡量标准向缓存器披露任何信息。此外,我们调查了安全分散的多传输码缓存假设,在缓存阶段,客户和发件者之间没有合作,并比集中计划研究其业绩。我们分析了系统在延迟编码方面的绩效,并用相互信息缓存和共享的关键存储表达方式保证了我们提出的计划的安全性。 在中央化的中央存储过程中,我们以可忽略的方式对安全性进行联合评估。