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Adaptive Role Switching for Fair and Efficient Battery Usage in Device-to-Device Communication

机译:设备到设备通信中的公平有效电池使用的自适应角色切换

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By leveraging device-to-device communication, opportunistic networks promise to complement infrastructure-based networks, by enabling communication in remote areas or during disaster and emergency situations, as well as by giving rise to novel applications, such as location-based sharing. Yet, to become feasible in practice and accepted by users, it is crucial that opportunistic communication be energy-efficient. Through extensive and detailed measurements and analysis, we show in this paper, that all of today's device-to-device communication technologies suffer from two grave energy consumption problems: very expensive neighbor discovery and unfair connection maintenance. We consider the two most well-known technologies - Wi-Fi Direct and Bluetooth, and a third solution based on the WLAN access point mode - WLAN-Opp. We carefully design a measurement setup which allows us to isolate the energy consumption of individual operations (e.g. CPU sleeping/waking up, scanning/listening for neighbors etc) for these technologies and compare the technologies based on these measurements. Our analysis reveals that neighbor discovery can quickly drain a device's battery, depending on the required scanning frequency. In addition, once a connection is established, the "host" of the connection consumes two to five times the energy needed by a "client". To solve this unfairness problem, we propose a strategy that periodically alternates the hosting role among the peers. Further, we minimize the cost of the role switching operation by using the distribution of the residual connection time of two peers to calculate an adaptive switching period. We examine the trade-off between fairness and switching cost on real-world connection traces and show that our scheme largely outperforms static role switching. Finally, we demonstrate that our fair role switching scheme is also effective when run on real devices.
机译:通过利用设备之间的通信,机会网络有望通过在偏远地区或在灾难和紧急情况下进行通信,以及通过出现新颖的应用程序(例如基于位置的共享)来补充基于基础设施的网络。然而,要在实践中变得可行并为用户所接受,机会主义通信必须高效节能。通过广泛,详细的测量和分析,我们在本文中表明,当今所有的设备到设备通信技术都存在两个严重的能耗问题:非常昂贵的邻居发现和不公平的连接维护。我们考虑两种最著名的技术-Wi-Fi Direct和蓝牙,以及基于WLAN接入点模式的第三个解决方案-WLAN-Opp。我们精心设计了一种测量设置,可让我们隔离这些技术的单个操作(例如CPU睡眠/唤醒,扫描/侦听邻居等)的能耗,并根据这些测量结果对这些技术进行比较。我们的分析表明,根据所需的扫描频率,邻居发现可以迅速耗尽设备的电池电量。另外,一旦建立连接,连接的“主机”消耗的能量是“客户端”所需能量的2至5倍。为了解决此不公平问题,我们提出了一种策略,该策略会定期在同级之间轮流担任托管角色。此外,通过使用两个对等方的剩余连接时间的分布来计算自适应切换周期,我们将角色切换操作的成本降至最低。我们检查了真实世界连接轨迹上公平性和转换成本之间的权衡,并表明我们的方案在很大程度上优于静态角色转换。最后,我们证明了我们的公平角色切换方案在真实设备上运行时也有效。

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