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Online Throughput Maximization for Energy Harvesting Communication Systems with Battery Overflow

机译:带电池溢出的能量收集通信系统的在线吞吐量最大化

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Energy harvesting communication system enables energy to be dynamically harvested from natural resources and stored in capacitated batteries to be used for future data transmission. In such a system, the amount of future energy to harvest is uncertain and the battery capacity is limited. As a consequence, battery overflow and energy dropping may happen, causing energy underutilization. To maximize the data throughput by using the energy efficiently, a rate-adaptive transmission schedule must address the trade-off between a high-rate transmission which avoids energy overflow and a low-rate transmission which avoids energy shortage. In this paper, we study an online throughput maximization problem without knowing future information. To the best of our knowledge, this is the first work studying the fully-online transmission rate scheduling problem for battery-capacitated energy harvesting communication systems. We consider the problem under two models of the communication channel, a static channel model that assumes the channel status is stable, and a fading channel model that assumes the channel status varies. For the former, we develop an online algorithm that approximates the offline optimal solution within a constant factor for all possible inputs. For the latter, that the channel gains vary in range [hmin,hmax] , we propose an online algorithm with a proven Θ(log(hmaxhmin)) -competitive ratio. Our simulation results further validate the efficiency of the proposed online algorithms.
机译:能量收集通信系统使能量能够从自然资源中动态收集,并存储在带电容的电池中,以用于将来的数据传输。在这样的系统中,未来收获的能量数量是不确定的,并且电池容量是有限的。结果,可能发生电池溢出和能量下降,导致能量利用不足。为了通过有效利用能量来最大化数据吞吐量,速率自适应的传输计划必​​须解决避免能量溢出的高速率传输与避免能量短缺的低速率传输之间的权衡。在本文中,我们在不了解未来信息的情况下研究了在线吞吐量最大化问题。据我们所知,这是研究电池供电的能量收集通信系统的全在线传输速率调度问题的第一项工作。我们在两种通信信道模型下考虑该问题:假定信道状态稳定的静态信道模型和假定信道状态变化的衰落信道模型。对于前者,我们开发了一种在线算法,该算法在所有可能的输入的恒定因子内近似离线优化解决方案。对于后者,信道增益在[hmin,hmax]范围内变化,我们提出了一种在线算法,该算法具有经过证明的Θ(log(hmaxhmin))-竞争比。我们的仿真结果进一步验证了所提出的在线算法的效率。

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