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Pre-alarm model of diesel vapour detection and alarm based on grey forecasting

机译:基于灰色预测的柴油蒸气探测预警预警模型。

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摘要

The signal forecasting and processing is an important research direction in the sensors and instrumentation fields. In order to solve the false alarm problem in the diesel vapour detection and alarm system in engine room of ship, this paper builds an pre-alarm model based on grey forecasting theory. An experiment is designed to test the model. The results show that the model can forecasts the concentration of diesel vapour according to the sensor output with a high accuracy of large than 90percent. The best recording duration time is determined to 10 min with a higher accuracy of large than 99percent.
机译:信号的预测和处理是传感器和仪器领域的重要研究方向。为解决船舶机舱柴油蒸气检测与报警系统中的虚警问题,建立了基于灰色预测理论的预警模型。设计了一个实验来测试模型。结果表明,该模型可以根据传感器的输出预测柴油蒸气的浓度,精度高达90%以上。最佳记录持续时间被确定为10分钟,其准确性高于99%。

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