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Secure SWIPT Networks Based on a Non-Linear Energy Harvesting Model

机译:基于非线性能量收集模型的安全SWIPT网络

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We optimize resource allocation to enable com- munication security in simultaneous wireless information and power transfer (SWIPT) for internet-of-things (IoT) networks. The resource allocation algorithm design is formulated as a non-convex optimization problem. We aim at maximizing the total harvested power at energy harvesting (EH) receivers via the joint optimization of transmit beamforming vectors and the covariance matrix of the artificial noise injected to facilitate secrecy provisioning. The proposed problem formulation takes into account the non-linearity of energy harvesting circuits and the quality of service requirements for secure communication. To obtain a globally optimal solution of the resource allocation problem, we first transform the resulting non-convex sum-of- ratios objective function into an equivalent objective function in parametric subtractive form, which facilitates the design of a novel iterative resource allocation algorithm. In each iteration, the semidefinite programming (SDP) relaxation approach is adopted to solve a rank-constrained optimization problem optimally. Nu- merical results reveal that the proposed algorithm can guarantee communication security and provide a significant performance gain in terms of the harvested energy compared to existing designs which are based on the traditional linear EH model.
机译:我们优化资源分配,以在物联网(IoT)网络的同时无线信息和电力传输(SWIPT)中实现通信安全性。将资源分配算法设计公式化为非凸优化问题。我们旨在通过联合优化发射波束赋形矢量和人工噪声的协方差矩阵来优化能量收集(EH)接收器的总收集功率,以促进保密性。提出的问题表述考虑了能量收集电路的非线性和安全通信的服务质量要求。为了获得资源分配问题的全局最优解,我们首先将得到的非凸比率和目标函数转换为参数减法形式的等效目标函数,这有助于设计一种新颖的迭代资源分配算法。在每次迭代中,均采用半定规划(SDP)松弛方法来最优地解决秩约束优化问题。数值结果表明,与基于传统线性EH模型的现有设计相比,所提出的算法可以保证通信安全并在能量收集方面提供显着的性能提升。

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