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Geosensor Data Representation Using Layered Slope Grids

机译:使用分层坡度网格的地球传感器数据表示

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摘要

Environmental monitoring applications are designed for supplying derived and often integrated information by tracking and analyzing phenomena. To determine the condition of a target place, they employ a geosensor network to get the heterogeneous sensor data. To effectively handle a large volume of sensor data, applications need a data abstraction model, which supports the summarized data representation by encapsulating raw data. For faster data processing to answer a user’s queries with representative attributes of an abstracted model, we propose such a data abstraction model, the Layered Slopes in Grid for Sensor Data Abstraction (LSGSA), which is based on the SGSA. In a single grid-based layer for each sensor type, collected data is represented by slope directional vectors in two layered slopes, such as height and surface. To answer a user query in a central monitoring server, LSGSA is used to reduce the time needed to extract event features from raw sensor data as a preprocessing step for interpreting the observed data. The extracted features are used to understand the current data trends and the progress of a detected phenomenon without accessing raw sensor data.
机译:环境监视应用程序旨在通过跟踪和分析现象来提供派生的且通常是集成的信息。为了确定目标地点的状况,他们采用了地理传感器网络来获取异构传感器数据。为了有效处理大量传感器数据,应用程序需要一个数据抽象模型,该模型通过封装原始数据来支持汇总数据表示。为了更快地处理数据,以抽象模型的代表性属性回答用户的查询,我们提出了一种数据抽象模型,即基于SGSA的传感器数据抽象网格分层斜率(LSGSA)。在每种传感器类型的单个基于栅格的层中,收集的数据由两层坡度(例如高度和表面)中的坡度方向矢量表示。为了回答中央监控服务器中的用户查询,LSSGA用于减少从原始传感器数据中提取事件特征所需的时间,作为解释观测数据的预处理步骤。提取的特征用于了解当前数据趋势和检测到的现象的进展,而无需访问原始传感器数据。

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