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Energy-efficient delay-tolerant communication: Revisiting optimality of superposition coding in broadcast channels

机译:节能高效的延迟容忍通信:重新探究广播信道中叠加编码的最优性

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Communication can consume a significant fraction of the energy for many simple sensor devices for which battery life is an important consideration in deployment. Battery power is consumed not only by transmit power amplifier but also in the radio frequency circuits and digital processors during transmission and reception. When communication requirements are bursty, many devices incorporate a `sleep' state where the circuit power consumption is also reduced by turning circuits off. Delaying transmission can allow devices to sleep more and conserve energy. We consider the optimal tradeoff between receiver energy consumption and average throughput, and derive insights on multi-user downlink communication. We reformulate the problem with generalized power constraints on the transmitter's and the receiver's power consumption: depending on their states, either transmit/receive or sleep, they consume different amounts of power. We show how these changes of power constraints affect average spectral efficiency. In Gaussian broadcast channels, taking into account the receivers' power constraints, we show that multi-user transmission schemes, previously proven to be optimal for maximizing spectral efficiency, such as superposition coding and dirty paper coding (DPC) are not always optimal. We characterize the condition, under which these schemes remain optimal, in terms of receivers' power constraints. These models are suited for machine-to-machine (M2M) communications and wireless sensor networks where 1) transmitters and/or receivers are battery-powered devices, 2) their locations are static once deployed, and 3) their data characteristic is not delay-sensitive.
机译:对于许多简单的传感器设备而言,通信可能消耗大量的能量,对于这些传感器而言,电池寿命是部署中的重要考虑因素。电池功率不仅在发射功率放大器中消耗,而且在发射和接收过程中也在射频电路和数字处理器中消耗。当通信需求突增时,许多设备都处于“睡眠”状态,该状态还通过关闭电路来降低电路功耗。延迟传输可以使设备更多地睡眠并节省能量。我们考虑了接收机能耗和平均吞吐量之间的最佳折衷,并得出了有关多用户下行链路通信的见解。我们通过对发射机和接收机的功耗进行通用的功率约束来重新构造该问题:根据它们的状态(发送/接收或睡眠),它们消耗不同量的功率。我们展示了功率限制的这些变化如何影响平均频谱效率。在高斯广播信道中,考虑到接收器的功率限制,我们证明了先前被证明对于最大化频谱效率最佳的多用户传输方案(例如叠加编码和脏纸编码(DPC))并非总是最优的。我们根据接收器的功率约束来表征这些方案保持最佳状态的条件。这些模型适用于机器对机器(M2M)通信和无线传感器网络,其中1)发射器和/或接收器是电池供电的设备,2)部署后它们的位置是静态的,并且3)其数据特性没有延迟-敏感的。

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