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Multi-step forecasting of waiting time on emergency department overcrowding using multilayer perceptron neural network algorithm

机译:基于多层感知器神经网络算法的急诊人满为患的等待时间多步预测

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A multilayer perceptron artificial neural network (MLP-ANN) was implemented to perform a seven days multi-step prediction of waiting times in the emergency department of a public hospital. A dataset of more than two years was used to training the MLP-ANN. The imputation technique was used to interpolate the data. The dataset was distributed in training and testing with 80 and 20%, respectively. The results of the MLP-ANN were compared with the Persistence and ARIMA models, obtaining much better results than the other two methods, especially on weekends.
机译:实施了多层感知器人工神经网络(MLP-ANN),以对公立医院急诊室的等待时间进行为期7天的多步预测。超过两年的数据集用于训练MLP-ANN。使用插补技术对数据进行插值。数据集在训练和测试中的分布分别为80%和20%。将MLP-ANN的结果与Persistence和ARIMA模型进行了比较,获得的结果比其他两种方法要好得多,尤其是在周末。

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