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Achievable Secrecy Rates of an Energy Harvesting Device

机译:能量收集设备可达到的保密率

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The secrecy rate represents the amount of information per unit time that can be securely sent on a communication link. In this work, we investigate the achievable secrecy rates in an energy harvesting communication system composed of a transmitter, a receiver and a malicious eavesdropper. In particular, because of the energy constraints and the channel conditions, it is important to understand when a device should transmit and to optimize how much power should be used to improve security. Both full knowledge and partial knowledge of the channel are considered under a Nakagami fading scenario. We show that high secrecy rates can be obtained only with power coding rate adaptation. Moreover, we highlight the importance of optimally dividing the transmission power in the frequency domain, and note that the optimal scheme provides high gains in secrecy rate over the uniform power splitting case. Analytically, we explain how to find the optimal policy and prove some of its properties. In our numerical evaluation, we discuss how the maximum achievable secrecy rate changes according to the various system parameters. Furthermore, we discuss the effects of a finite battery on the system performance and note that, in order to achieve high secrecy rates, it is not necessary to use very large batteries.
机译:保密率表示可以在通信链路上安全发送的每单位时间的信息量。在这项工作中,我们研究了由发射器,接收器和恶意窃听者组成的能量采集通信系统中可达到的保密率。特别是,由于能量限制和信道条件,重要的是要了解何时应发送设备并优化应使用多少功率以提高安全性。在Nakagami衰落情况下,将考虑通道的全部知识和部分知识。我们表明,只有通过功率编码率自适应才能获得高保密率。此外,我们强调了在频域中最佳地划分发射功率的重要性,并指出,在均匀功率分配的情况下,最优方案可提供较高的保密率增益。通过分析,我们解释了如何找到最佳策略并证明其某些特性。在我们的数值评估中,我们讨论了最大可达到的保密率如何根据各种系统参数而变化。此外,我们讨论了有限电池对系统性能的影响,并注意到,为了实现高保密率,没有必要使用非常大的电池。

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