Analysis of streaming GPS measurements of surface displacement through a web services environment

R. Granat, G. Aydin, M. Pierce, Zhigang Qi, Y. Bock
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引用次数: 14

Abstract

We present a method for performing mode classification of real-time streams of GPS surface position data. Our approach has two parts: an algorithm for robust, unconstrained fitting of hidden Markov models (HMMs) to continuous-valued time series, and SensorGrid technology that manages data streams through a series of filters coupled with a publish/subscribe messaging system. The SensorGrid framework enables strong connections between data sources, the HMM time series analysis software, and users. We demonstrate our approach through a Web portal environment through which users can easily access data from the SCIGN and SOPAC GPS networks in Southern California, apply the analysis method, and view results. Ongoing real-time mode classifications of streaming GPS data are displayed in a map-based visualization interface
通过web服务环境分析流GPS测量的地表位移
提出了一种对GPS地面位置数据实时流进行模式分类的方法。我们的方法有两部分:一种算法,用于对连续值时间序列进行鲁棒、无约束的隐马尔可夫模型(hmm)拟合,以及通过一系列过滤器和发布/订阅消息传递系统管理数据流的SensorGrid技术。SensorGrid框架可以在数据源、HMM时间序列分析软件和用户之间建立牢固的连接。我们通过Web门户环境演示了我们的方法,通过该环境,用户可以轻松地访问来自南加州SCIGN和SOPAC GPS网络的数据,应用分析方法并查看结果。流式GPS数据的正在进行的实时模式分类显示在基于地图的可视化界面中
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