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Fuel volume measurement in aircraft using neural networks

机译:使用神经网络的飞机中的燃油量测量

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Measurement of fuel quantity in aircraft tanks is a multi-dimensional estimation problem. It involves a nonlinear transformation of a set of noisy sensor signals into a single fuel quantity estimate. In a typical passenger aircraft this calculation is usually performed by means of a set of one-dimensional, linearly interpolated look-up tables. This paper presents a neural net approach to the problem. A feedforward neural net is trained to estimate fuel quantity directly from sensor readings. A simulation example is given to compare efficiency of the neural net technique to the standard look-up table method. Practical ramifications of the proposed method are discussed.
机译:飞机箱中的燃料量的测量是多维估计问题。它涉及一组噪声传感器信号的非线性变换成单个燃料量估计。在典型的乘客飞机中,该计算通常是通过一组一维线性内插查找表来执行的。本文提出了一个神经网络方法。临时前的神经网络接受训练以直接从传感器读数估计燃料量。仿真示例是为了将神经网络技术的效率与标准查找表法进行比较。讨论了所提出的方法的实际后果。

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