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Application of Data Fusion and Sensor Head Algorithm for Data Extraction from Wireless Sensor Networks

机译:数据融合与传感器头算法在无线传感器网络数据提取中的应用

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Objectives: The primary objective of the paper is to propose an optimized data extraction technique to obtain data from the Wireless Sensor Networks (WSNs)using ‘Sensor Head Algorithm’ and Data Fusion. Methods/Statistical Analysis: The proposed idea works in a three-layered architecture which includes the deployed sensors, the selected Sensor Head and the Static Data Sink. The Sensor Head Algorithm is used to select a sensor head that collects data from all sensors. The Data Fusion algorithm results in generation of unified data which is used to derive the output. Finally, the fused data is transmitted from the Sensor Head to the Static Data sink. Findings: A sample data was used to verify the working of the model using simulations. On the application of Sensor Head Algorithm, the sensors are assigned priorities on the basis of their residual energies. The sensor with highest residual energy becomes the Sensor Head. All the sensors transmit their data to the Sensor Head where the Data Fusion takes place later. Data Fusion initially removes redundancy in from the collected data making the processing simpler and saving the energy. The resultant data is then used to generate fused inference using Fuzzy Logic Controller (FLC). These inferences are recorded and later used to generate final output. The proposed idea ensures reduction of load on the system, simplifies the previously proposed methods, reduces latency in data collection and improves network lifetime. This data, finally transmitted to the static data sink, can be used for finding inferences or reaching a conclusion about the target area in the desired way. Application/Improvements: In the current paper, we have proposed an idea which we shall use to develop a fully functional model. Since, the proposed technique is concerned with data extraction, it can be applied to every situation where the Wireless Sensor Network is deployed.
机译:目标:本文的主要目的是提出一种优化的数据提取技术,以使用“传感器头算法”和数据融合从无线传感器网络(WSN)获取数据。方法/统计分析:提出的想法在三层体系结构中工作,该体系结构包括已部署的传感器,选定的传感器头和静态数据接收器。传感器头算法用于选择从所有传感器收集数据的传感器头。数据融合算法可生成用于导出输出的统一数据。最后,融合后的数据从传感器头传输到静态数据接收器。结果:样本数据用于通过仿真验证模型的工作。在传感器头算法的应用中,根据传感器的剩余能量为其分配优先级。剩余能量最高的传感器成为传感器头。所有传感器都将其数据传输到传感器头,稍后再进行数据融合。数据融合最初可从收集的数据中消除冗余,从而简化了处理并节省了能源。然后,使用模糊逻辑控制器(FLC)将所得数据用于生成融合推理。记录这些推断,然后将其用于生成最终输出。提出的想法可确保减少系统负载,简化先前提出的方法,减少数据收集的延迟并延长网络寿命。最终传送到静态数据接收器的该数据可用于以所需方式查找有关目标区域的推断或得出结论。应用程序/改进:在当前的论文中,我们提出了一个想法,我们将使用它来开发一个功能齐全的模型。由于所提出的技术与数据提取有关,因此可以将其应用于部署无线传感器网络的每种情况。

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