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Energy-Efficient Optimal Power Allocation in Integrated Wireless Sensor and Cognitive Satellite Terrestrial Networks

机译:集成无线传感器和认知卫星地面网络中的节能最佳功率分配

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摘要

This paper proposes novel satellite-based wireless sensor networks (WSNs), which integrate the WSN with the cognitive satellite terrestrial network. Having the ability to provide seamless network access and alleviate the spectrum scarcity, cognitive satellite terrestrial networks are considered as a promising candidate for future wireless networks with emerging requirements of ubiquitous broadband applications and increasing demand for spectral resources. With the emerging environmental and energy cost concerns in communication systems, explicit concerns on energy efficient resource allocation in satellite networks have also recently received considerable attention. In this regard, this paper proposes energy-efficient optimal power allocation schemes in the cognitive satellite terrestrial networks for non-real-time and real-time applications, respectively, which maximize the energy efficiency (EE) of the cognitive satellite user while guaranteeing the interference at the primary terrestrial user below an acceptable level. Specifically, average interference power (AIP) constraint is employed to protect the communication quality of the primary terrestrial user while average transmit power (ATP) or peak transmit power (PTP) constraint is adopted to regulate the transmit power of the satellite user. Since the energy-efficient power allocation optimization problem belongs to the nonlinear concave fractional programming problem, we solve it by combining Dinkelbach’s method with Lagrange duality method. Simulation results demonstrate that the fading severity of the terrestrial interference link is favorable to the satellite user who can achieve EE gain under the ATP constraint comparing to the PTP constraint.
机译:本文提出了一种新颖的基于卫星的无线传感器网络(WSN),该网络将WSN与认知卫星地面网络集成在一起。具有提供无缝网络访问和缓解频谱稀缺的能力,认知卫星地面网络被认为是未来无线网络的有前途的候选者,因为它们对无处不在的宽带应用提出了新的要求,并且对频谱资源的需求不断增加。随着通信系统中新出现的环境和能源成本问题,最近对卫星网络中的节能资源分配的明确关注也引起了相当大的关注。在这方面,本文针对非实时和实时应用,分别在认知卫星地面网络中提出了节能高效的最优功率分配方案,该方案在保证认知卫星用户的能效(EE)最大化的同时,实现了最大效率。主地面用户受到的干扰低于可接受的水平。具体地,采用平均干扰功率(AIP)约束来保护主要地面用户的通信质量,同时采用平均发射功率(ATP)或峰值发射功率(PTP)约束来调节卫星用户的发射功率。由于节能型功率分配优化问题属于非线性凹分数规划问题,因此我们将Dinkelbach方法与Lagrange对偶方法结合起来进行求解。仿真结果表明,与PTP约束相比,地面干扰链路的衰落严重程度对在ATP约束下可以实现EE增益的卫星用户有利。

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