Sangmahamad Pubet, Woradit Kampol, Saengudomlert Poompat
Department of Electronics and Telecommunication Engineering, Faculty of Engineering, Rajamangala University of Technology Thanyaburi, Pathum Thani 12110, Thailand.
Optimization Theory and Applications for Engineering Systems Research Group, Department of Computer Engineering, Faculty of Engineering, Chiang Mai University, Chiang Mai 50200, Thailand.
Sensors (Basel). 2022 May 18;22(10):3814. doi: 10.3390/s22103814.
This paper considers simultaneous wireless information and power transfer (SWIPT) from a base station to multiple Internet of Things (IoT) nodes via orthogonal frequency-division multiple access (OFDMA), where every node can eavesdrop on the subcarriers allocated to other nodes. Application layer encryption is unsuitable for IoT nodes relying on energy harvesting, and physical layer secrecy should be deployed. The different channels among users on every subcarrier can be exploited to obtain physical layer secrecy without using artificial noise. We propose an algorithm to maximize the secrecy rate of IoT nodes by jointly optimizing the power splitting ratio and subcarrier allocation. For fairness, the lowest total secrecy rate among users is maximized. Through simulations, the proposed algorithm is compared with the minimum effort approach, which allocates each subcarrier to the strongest node and selects the minimum sufficient power splitting ratio. The obtained secrecy rate is 3 times (4.5 over 1.5 bps/Hz) higher than that of the minimum effort approach in every case of parameters: the base station's transmit power, the minimum harvested energy requirement of an IoT node and the energy harvesting efficiency.
本文考虑通过正交频分多址(OFDMA)从基站向多个物联网(IoT)节点进行同时无线信息与能量传输(SWIPT),其中每个节点都能窃听分配给其他节点的子载波。应用层加密不适用于依赖能量收集的物联网节点,因此应部署物理层保密技术。可以利用每个子载波上用户之间的不同信道来实现物理层保密,而无需使用人工噪声。我们提出一种算法,通过联合优化功率分配比和子载波分配来最大化物联网节点的保密速率。为保证公平性,用户中最低的总保密速率被最大化。通过仿真,将所提算法与最小努力方法进行比较,最小努力方法是将每个子载波分配给最强的节点,并选择最小的足够功率分配比。在基站发射功率、物联网节点的最小收集能量需求以及能量收集效率的每种参数情况下,所获得的保密速率比最小努力方法高出3倍(4.5对比1.5bps/Hz)。