Optimizing transmission and shutdown for energy-efficient packet scheduling in sensor networks

S. Pollin, B. Bougard, R. Mangharam, L. Perre, F. Catthoor, R. Rajkumar, I. Moerman
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引用次数: 14

Abstract

Energy-efficiency is imperative to enable the deployment of sensor networks with satisfactory lifetime. Conventional power management in radio communication primarily focuses independently on the physical layer, medium access control (MAC) or routing and approaches differ depending on the levels of abstraction. At the physical layer, the fundamental trade-off that exists between transmission rate and energy is exploited. This leads to the lazy scheduling approach, which consists of transmitting with the lowest power over the longest feasible duration. At MAC level, power reduction techniques tend to keep the transmission as short as possible to maximize the radio's power-off interval. Those two approaches seem conflicting and it is not clear which one is the most appropriate for a given network scenario. In this paper, we propose a transmission strategy that combines both techniques optimally. We present a cross-layer solution to determine the best transmission strategy taking into account the transceiver power consumption characteristics, the system load and the scenario constraints. Based on this approach, we derive a low complexity, on-line scheduling algorithm that can be used to optimally organize the forwarding of the sensed information from cluster heads to the data sink (uplink) in a hierarchical sensor network. Results, considering Coded Frequency Shift Keying (FSK) modulation, show that depending on the scenario, a 50% extra power reduction is achieved in a realistic uplink data gathering context, compared to the case where only transmission rate scaling or shutdown is considered.
传感器网络中节能分组调度的传输和关闭优化
为了使传感器网络的部署具有令人满意的使用寿命,能源效率是必不可少的。无线电通信中传统的电源管理主要集中在物理层、介质访问控制(MAC)或路由上,方法因抽象层次的不同而不同。在物理层,传输速率和能量之间的基本平衡被利用。这导致了延迟调度方法,它包括在最长的可行持续时间内以最低的功率传输。在MAC级别,功率降低技术倾向于使传输尽可能短,以最大化无线电的断电间隔。这两种方法似乎相互冲突,而且不清楚哪一种方法最适合给定的网络场景。在本文中,我们提出了一种最优结合这两种技术的传输策略。我们提出了一种跨层解决方案,以确定考虑收发器功耗特性、系统负载和场景约束的最佳传输策略。基于这种方法,我们推导了一种低复杂度的在线调度算法,该算法可用于优化组织分层传感器网络中从簇头到数据接收器(上行链路)的感知信息转发。考虑到编码频移键控(FSK)调制,结果表明,与仅考虑传输速率缩放或关闭的情况相比,在实际上行数据收集环境中,根据不同的场景,可以实现50%的额外功耗降低。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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