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Energy efficient data collection in distributed sensor environments

机译:分布式传感器环境中的节能数据收集

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Sensors are typically deployed to gather data about the physical world and its artifacts for a variety of purposes that range from environment monitoring, control, to data analysis. Since sensors are resource constrained, often sensor data is collected into a sensor database that resides at (more powerful) servers. A natural tradeoff exists between the sensor resources (bandwidth, energy) consumed and the quality of data collected at the server. Blindly transmitting sensor updates at a fixed periodicity to the server results in a suboptimal solution due to the differences in stability of sensor values and due to the varying application needs that impose different quality requirements across sensors. We propose adaptive data collection mechanisms for sensor environments that adjusts to these variations while at the same time optimizing the energy consumption of sensors. Our experimental results show significant energy savings compared to the naive approach to data collection.
机译:通常部署传感器来收集有关物理世界及其工件的数据,用于从环境监视,控制到数据分析的各种目的。由于传感器受到资源的限制,因此经常将传感器数据收集到驻留在(功能更强大)服务器上的传感器数据库中。在消耗的传感器资源(带宽,能量)和服务器收集的数据质量之间存在自然的折衷。以固定的周期盲目地将传感器更新发送到服务器会导致解决方案不理想,这是由于传感器值的稳定性不同以及应用程序需求的变化(对传感器的质量要求不同)所致。我们为传感器环境提出了自适应数据收集机制,该机制可适应这些变化,同时优化传感器的能耗。与单纯的数据收集方法相比,我们的实验结果表明可节省大量能源。

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