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Symbiotic Sensing for Energy-Intensive Tasks in Large-Scale Mobile Sensing Applications

机译:大型移动传感应用中用于能量密集型任务的共生传感

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摘要

Energy consumption is a critical performance and user experience metric when developing mobile sensing applications, especially with the significantly growing number of sensing applications in recent years. As proposed a decade ago when mobile applications were still not popular and most mobile operating systems were single-tasking, conventional sensing paradigms such as opportunistic sensing and participatory sensing do not explore the relationship among concurrent applications for energy-intensive tasks. In this paper, inspired by social relationships among living creatures in nature, we propose a symbiotic sensing paradigm that can conserve energy, while maintaining equivalent performance to existing paradigms. The key idea is that sensing applications should cooperatively perform common tasks to avoid acquiring the same resources multiple times. By doing so, this sensing paradigm executes sensing tasks with very little extra resource consumption and, consequently, extends battery life. To evaluate and compare the symbiotic sensing paradigm with the existing ones, we develop mathematical models in terms of the completion probability and estimated energy consumption. The quantitative evaluation results using various parameters obtained from real datasets indicate that symbiotic sensing performs better than opportunistic sensing and participatory sensing in large-scale sensing applications, such as road condition monitoring, air pollution monitoring, and city noise monitoring.
机译:能耗是开发移动传感应用程序时的关键性能和用户体验指标,尤其是在近年来传感应用程序数量显着增长的情况下。正如十年前提出的那样,当移动应用程序仍然不流行并且大多数移动操作系统都是单任务处理时,诸如机会感测和参与式感测之类的常规感测范式不会探索耗能任务的并发应用程序之间的关系。在本文中,受自然界生物之间的社会关系的启发,我们提出了一种共生感测范式,该范式可以节省能量,同时保持与现有范式等效的性能。关键思想是传感应用程序应协同执行常见任务,以避免多次获取相同资源。通过这样做,该感测范例以极少的额外资源消耗执行感测任务,因此延长了电池寿命。为了评估和比较共生感官范式与现有的范式,我们根据完成概率和估计的能耗开发了数学模型。使用从真实数据集中获得的各种参数进行的定量评估结果表明,在道路状况监测,空气污染监测和城市噪声监测等大规模传感应用中,共生感测的性能要优于机会感测和参与感测。

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