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Applied Technology on Artificial Neural Network in Fault Diagnosis System

机译:故障诊断系统中人工神经网络的应用技术

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This paper combined Rumelhart's adding inertial impulse and dynamically adjusting the learning rate and proposed an improved algorithm to optimize the Back Propagation (BP) networks with applied technology. This improved BP networks is used to determining membership function and applied in fuzzy diagnosing vapor congealing equipment. The application results prove that the improved BP algorithm is effective and the convergence speed is accelerated and is much faster than the classic BP algorithm. The applied technology is very useful in the application course.
机译:本文组合了Rumelhart的惯性脉冲,并动态调整了学习率,提出了一种改进的算法,以优化应用技术的后传播(BP)网络。这种改进的BP网络用于确定隶属函数并应用于模糊诊断蒸汽凝固设备。应用结果证明了改进的BP算法有效,收敛速度加速,比经典BP算法快得多。应用技术在应用课程中非常有用。

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