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Multi-sensors data fusion system for wireless sensors networks of factory monitoring via BPN technology

机译:通过BPN技术进行工厂监控的无线传感器网络的多传感器数据融合系统

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摘要

This study attempts to apply a back-propagation network (BPN) for multi-sensors data fusion in a wireless sensor networks (WSNs) system with a node-sink mobile network structure. This investigate is to finish the factory monitoring at environment monitoring services (EMS). These practice wireless sensor network circuits include temperature, humidity, ultraviolet, and illumination four variable measurement components. These data fields of each sensor nodes contain the properties and specifications of that signal process rules, the remote engineers can manage the multi-sensors data fusion using the browser, and the WSNs system then classification the data fusion database via the Internet and mobile network. Moreover, The BPN training approach is significant that improves data fusion system in accuracy and classification with parallel computing for data fusion efficiency. The final phase of the classification fusion system applies parallel BPN technology to process data fusion, and can solve the problem of various signals states. This study is considered implemented on the Yang-Fen Automation Electrical Engineering Company as a case study. The experiment is continued for six months, and engineers are also used to operating the web-based classification fusion system. Therefore, the cooperative plan described above is analyzed and discussed here. Finally, these papers propose the tradition methods compare with the innovative BPN methods.
机译:这项研究试图将反向传播网络(BPN)用于具有节点接收器移动网络结构的无线传感器网络(WSNs)系统中的多传感器数据融合。这项调查是为了完成环境监视服务(EMS)的工厂监视。这些实践中的无线传感器网络电路包括温度,湿度,紫外线和照明四个可变的测量组件。每个传感器节点的这些数据字段包含该信号处理规则的属性和规范,远程工程师可以使用浏览器管理多传感器数据融合,然后WSNs系统通过Internet和移动网络对数据融合数据库进行分类。此外,BPN训练方法非常重要,它可以通过并行计算提高数据融合系统的准确性和分类,以提高数据融合效率。分类融合系统的最后阶段应用并行BPN技术处理数据融合,并可以解决各种信号状态的问题。该研究被认为是在杨芬自动化电气工程公司上进行的案例研究。实验持续了六个月,工程师还习惯于操作基于Web的分类融合系统。因此,在此分析和讨论上述合作计划。最后,这些论文提出了传统方法与创新的BPN方法的比较。

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