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A case study on the application of predictive analytics toward forecasting swing door failure

机译:预测分析在预测摆动门故障中的应用案例研究

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Predictive maintenance is a maintenance approach that involves monitoring machines in order to predict their failures. This case study focuses on predicting failure of swing doors employed in a facility and scheduling maintenance based on the predicted failure date. Swing doors in a facility are checked regularly. Problems such as a door stays open only for a short period of time, a door opens only after a hard push act as signals that some larger problem may be growing. With this information, maintenance can be scheduled before the door goes out of service. Hold on Time (HoT), which is the specified time during which a swing door is held open, is collected for all swing doors in a facility. By closely following the trend exhibited by hold on time readings observed overtime, abnormal operations could be predicted beforehand, and maintenance can be carried out before any doors fail. Piecewise regression is the technique adopted for prediction and is implemented using R.
机译:预测性维护是一种维护方法,涉及监控机器以预测其故障。本案例研究侧重于预测设施中采用的摆动门的失败,并根据预测的故障日期进行调度维护。经常检查设施中的摇摆门。门的问题只在短时间内保持打开,只有在硬盘推动时只打开一个门,因为一些更大的问题可能正在增长。通过这些信息,可以在门过时之前安排维护。按住时间(热),这是一个特定时间,在该设施中的所有摆动门都收集了摆动门的特定时间。通过密切关注通过按住时间读取的趋势,观察到加班时,可以预先预测异常操作,并且可以在任何门失败之前进行维护。分段回归是用于预测的技术,并使用R实施。

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