处理来自漂浮物互联网的众包数据

R. Montella, D. Luccio, L. Marcellino, A. Galletti, Sokol Kosta, A. Brizius, Ian T Foster
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引用次数: 7

摘要

集成到移动设备中的传感器提供了独特的机会来捕捉以其他方式无法轻易收集到的详细环境信息。我们在这里展示了如何使用休闲船上联网导航传感器的数据来构建独特的新数据集,并以水下地形(测深)为例来演示该方法。具体来说,我们描述了一个端到端的工作流程,涉及收集大量时间戳(位置、深度)测量数据,这些数据来自休闲船上的“浮动物联网”设备;通过能够处理延迟、间歇甚至断开的网络的专用协议,将数据通信到云资源;测量数据集成到云存储;基于云计算平台的测量数据的高效校正与插值以及不断更新的水深数据库的创建。该工作流的原型实现利用FACE-IT Galaxy工作流引擎,将网络通信和数据库组件与运行在虚拟化云环境中的cuda算法集成在一起。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Processing of crowd-sourced data from an internet of floating things
Sensors incorporated into mobile devices provide unique opportunities to capture detailed environmental information that cannot be readily collected in other ways. We show here how data from networked navigational sensors on leisure vessels can be used to construct unique new datasets, using the example of underwater topography (bathymetry) to demonstrate the approach. Specifically, we describe an end-to-end workflow that involves the collection of large numbers of timestamped (position, depth) measurements from "internet of floating things" devices on leisure vessels; the communication of data to cloud resources, via a specialized protocol capable of dealing with delayed, intermittent, or even disconnected networks; the integration of measurement data into cloud storage; the efficient correction and interpolation of measurements on a cloud computing platform; and the creation of a continuously updated bathymetric database. Our prototype implementation of this workflow leverages the FACE-IT Galaxy workflow engine to integrate network communication and database components with a CUDA-enabled algorithm running in a virtualized cloud environment.
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