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A New Method of Early Real-Time Fault Diagnosis for Technical Process

机译:一种新的技术过程早期实时故障诊断方法

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By taking the process of synthetic ammonia decarbornization as the research object, a new method of early real-time fault diagnosis based on the linear classifier—reforming neural network was proposed. The method, which need not establish accurate mathematical model, and has the advantages of its simple learning algorithm, accumulate knowledge from example automatically, learning and classification of parallel processing and fast response speed etc.. The results show that it can be applied to early real-time fault diagnosis in the process, and can provide techniques guarantee for safety production.
机译:通过以合成氨氯替代化为研究对象的方法,提出了一种基于线性分类器改革神经网络的早期实时故障诊断的新方法。该方法,不需要建立准确的数学模型,具有其简单学习算法的优点,自动累积示例的知识,并行处理的学习和分类和快速响应速度等。结果表明它可以提前应用该过程中实时故障诊断,并可为安全生产提供技术保证。

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