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首页> 外文期刊>Engineering Applications of Artificial Intelligence >Capacitive sensor-based fluid level measurement in a dynamic environment using neural network
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Capacitive sensor-based fluid level measurement in a dynamic environment using neural network

机译:使用神经网络在动态环境中基于电容式传感器的液位测量

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摘要

A measurement system has been developed using a single tube capacitive sensor to accurately determine the fluid level in non-stationary tanks, namely automotive fuel tanks. The system determines the fluid level in the presence of dynamic slosh. A neural network-based approach is used to process the sensor signal and achieve substantial accuracy compared with the averaging method, which is normally used under such conditions. The sensor readings were obtained by experimentation carried out under various dynamic conditions. The sensor response was recorded at various slosh frequencies and fuel volumes; which was then used to train three different neural network topologies. Field trials were carried out to obtain the actual driving data for the purpose of testing the neural networks using MATLAB software. One static neural network topology, namely Feed-forward Backpropagation Neural Network, and two dynamic neural network topologies, namely Distributed Time Delay Neural Network and NARX Neural Network, have been investigated in this work. The developed fluid level measurement system is capable of determining the fluid level in a dynamic environment with a maximum error of 8.7% by using the two dynamic neural networks, and 0.11* using the static feed-forward back-propagation neural network.
机译:已经开发出一种使用单管电容式传感器的测量系统,以准确确定非固定油箱(即汽车油箱)中的液位。该系统在存在动态晃荡的情况下确定液位。与通常在这种条件下使用的平均方法相比,基于神经网络的方法用于处理传感器信号并获得相当大的精度。通过在各种动态条件下进行的实验获得传感器的读数。在各种晃动频率和燃油量下记录传感器的响应;然后用于训练三种不同的神经网络拓扑。为了使用MATLAB软件测试神经网络,进行了现场试验以获得实际的驾驶数据。本文研究了一种静态神经网络拓扑,即前馈反向传播神经网络,以及两种动态神经网络拓扑,即分布式时延神经网络和NARX神经网络。开发的液位测量系统能够使用两个动态神经网络确定动态环境中的液位,最大误差为8.7%,使用静态前馈反向传播神经网络确定的误差为0.11 *。

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