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Multilayer Neural Network with Multi-Valued Neurons in Time Series Forecasting of Oil Production

机译:多层神经网络与多价神经元的时间序列预测石油产量

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In this paper, we discuss the long-term time series forecasting using a Multilayer Neural Network with Multi-Valued Neurons (MLMVN). This is complex-valued neural network with a derivative-free backpropagation learning algorithm. We evaluate the proposed approach using a real-world data set describing the dynamic behavior of an oilfield asset located in the coastal swamps of the Gulf of Mexico. We show that MLMVN can be efficiently applied to univariate and multivariate multi-step ahead prediction of reservoir dynamics. This paper is not only intended for proposing a novel model of forecasting but to study carefully several aspects of the application of ANN models to time series forecasting that could be of the interest for pattern recognition community.
机译:在本文中,我们讨论了使用多层神经网络具有多重神经元(MLMVN)的长期时间序列预测。这是具有无衍生反向学习算法的复受价值的神经网络。我们使用实际数据集评估所提出的方法,描述位于墨西哥湾沿海沼泽的油田资产的动态行为。我们表明MLMVN可以有效地应用于储层动力学的单变量和多变量多步骤预测。本文不仅用于提出一种新颖的预测模型,而且仔细研究ANN模型的若干方面,以时间序列预测可能对模式识别界的兴趣。

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