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Study on the Filtering Method of Wind Monitoring Data in High Speed Railway: Wind monitoring data filtering for high speed railway disaster monitoring system based on BPNN

机译:高速铁路风监测数据过滤方法研究:基于BPNN的高速铁路灾害监测系统风监测数据滤波

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Wind monitoring system is a subsystem of highspeed railway disaster monitoring system, how to obtain the accumulated wind monitoring data has an effect on the accuracy and reliability of wind alarm. In this paper, based on existing wind monitoring data, using neural network algorithm, we try to study the filtering method of wind monitoring data in high speed railway. According to the continuous learning of historical wind monitoring data, a better neural network model can be obtained. Furthermore, the wind monitoring data can be filtered by this model, and more accurate wind monitoring data can be obtained. Finally, the example can be used to verify the accuracy of the model. This study has a certain reference value for the quality control of wind speed monitoring data of high speed railway.
机译:风电监测系统是高速铁路灾害监测系统的子系统,如何获得累计风监控数据对风警报的准确性和可靠性有影响。本文基于现有的风监测数据,采用神经网络算法,我们尝试研究高速铁路风监控数据的滤波方法。根据历史风监控数据的持续学习,可以获得更好的神经网络模型。此外,可以通过该模型过滤风监视数据,并且可以获得更准确的风监视数据。最后,该示例可用于验证模型的准确性。该研究具有一定的参考价值,用于高速铁路风速监测数据的质量控制。

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