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Scheduling Sensor Data Collection with Dynamic Traffic Patterns

机译:使用动态流量模式调度传感器数据收集

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The network traffic pattern of continuous sensor data collection often changes constantly over time due to the exploitation of temporal and spatial data correlations as well as the nature of condition-based monitoring applications. In contrast to most existing TDMA schedules designed for a static network traffic pattern, this paper proposes a novel TDMA schedule that is capable of efficiently collecting sensor data for any network traffic pattern and is thus well suited to continuous data collection with dynamic traffic patterns. In the proposed schedule, the energy consumed by sensor nodes for any traffic pattern is very close to the minimum required by their workloads given in the traffic pattern. The schedule also allows the base station to conclude data collection as early as possible according to the traffic load, thereby reducing the latency of data collection. We present a distributed algorithm for constructing the proposed schedule. We develop a mathematical model to analyze the performance of the proposed schedule. We also conduct simulation experiments to evaluate the performance of different schedules using real-world data traces. Both the analytical and simulation results show that, compared with existing schedules that are targeted on a fixed traffic pattern, our proposed schedule significantly improves the energy efficiency and time efficiency of sensor data collection with dynamic traffic patterns.
机译:连续传感器数据收集的网络流量模式经常会由于时间和空间数据相关性的利用以及基于状态的监视应用程序的性质而随时间不断变化。与大多数现有的为静态网络流量模式设计的TDMA计划相反,本文提出了一种新颖的TDMA计划,该计划能够有效地收集任何网络流量模式的传感器数据,因此非常适合采用动态流量模式进行连续数据收集。在建议的时间表中,传感器节点在任何流量模式下消耗的能量都非常接近流量模式中给定的工作负载所需的最低能量。该调度表还允许基站根据业务负载尽早完成数据收集,从而减少数据收集的等待时间。我们提出了一种用于构建拟议时间表的分布式算法。我们开发了一个数学模型来分析拟议时间表的性能。我们还进行模拟实验,以使用实际数据跟踪评估不同计划的性能。分析和仿真结果均表明,与针对固定流量模式的现有计划相比,我们提出的计划显着提高了动态流量模式下传感器数据收集的能源效率和时间效率。

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