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Development of semantic sensor web for monitoring environment conditions

机译:用于监控环境条件的语义传感器网的开发

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The semantic sensor web (SSW) is a combination of sensor networks, web services, database and semantic web technologies. The SSW describes sensor data with spatial, temporal, and thematic semantic metadata. One of the challenges for sensor web application is the integration and fusion of data coming from autonomously deployed sensor network. Gas Sensor technology is one of the wireless sensor network (WSN), which has a wide range of sensors that can be used to monitor the concentration of gas in a region. This paper implements SSW with existing gas sensor to perform readings from the environment, store it into a database and provide services application program interface (API) data. Sensor data used in this study are temperature, CO, CO2 and Humidity Sensor. The method we use is to build a Semantic Web to connect the sensor data that is spread by harnessing service API on the sensor semantic web servers interconnected. Furthermore, the data retrieved from the sensors will be represented in the form of ontology with RDF/OWL type and stored into RDF Repository (OPENRDF-SESAME) in order to be processed and published to the semantic web service. SPARQL library and curl serves to bridge the gap between service and Apache Tomcat. Existing data in the RDF Triple Store file will be displayed to the user to utilize the service using standard API RESTFUL. Then the existing data in the RDF database is displayed in a JSON data format.
机译:语义传感器Web(SSW)是传感器网络,Web服务,数据库和语义Web技术的组合。 SSW描述了具有空间,时间和主题语义元数据的传感器数据。传感器Web应用程序的挑战之一是集成和融合来自自动部署的传感器网络。气体传感器技术是无线传感器网络(WSN)之一,其具有广泛的传感器,可用于监测区域中的气体浓度。本文利用现有的气体传感器实现SSW以从环境中执行读数,将其存储到数据库中并提供服务应用程序接口(API)数据。本研究中使用的传感器数据是温度,CO,CO2和湿度传感器。我们使用的方法是构建语义Web,以连接通过在互连的传感器语义Web服务器上使用服务API进行利用的传感器数据来连接传感器数据。此外,从传感器检索的数据将以与RDF / OWL类型的本体形式表示,并存储到RDF存储库(OpenRDF-sesame)中以便进行处理和发布到语义Web服务。 SPARQL库和卷曲用于弥合服务与Apache Tomcat之间的差距。 RDF三重存储文件中的现有数据将显示给用户使用标准API RESTFULE使用该服务。然后,RDF数据库中的现有数据以JSON数据格式显示。

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