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NARX neural network model for predicting availability of a heavy duty mining equipment

机译:NARX神经网络模型,用于预测重型采矿设备的可用性

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In this work a neural network NARX model has been developed in order to predict availability of a heavy duty equipment of an important copper mining site in Chile. Four exogenous inputs have been considered (Number of Detentions, Mean Time to Repair, Mean Time between Failures and Use of Physical Availability) while Availability is the autoregressive variable. A 30 days moving average has been performed over the data. Results confirm that availability can be adequately multiple-step-ahead predicted using this arranged data and a NARX model including the 4 above mentioned variables as exogenous inputs.
机译:在这项工作中,已经开发了神经网络NARX模型,以预测智利重要铜矿场的重型设备的可用性。已考虑了四个外部输入(拘留次数,平均修复时间,平均故障间隔时间和使用物理可用性),而可用性是自回归变量。对数据进行了30天移动平均。结果证实,使用这种安排的数据和包括上述4个变量作为外来输入的NARX模型,可以充分地预先预测可用性。

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