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Forecasting Nonlinear Nonstationary Processes in Machine Learning Task

机译:预测机器学习任务中的非线性非平稳过程

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The article discusses the features of the solving the forecasting problems using machine learning techniques. The issues of accounting and correctly processing non-linear non-stationary processes in the problems of modeling and forecasting time series in various areas are considered. The analysis of stages and methods for solving machine learning problems. As an example, consider the problem of predicting currency pairs based on historical data. A comparative analysis of the normalization methods in data clustering is given. For the six currency pairs a short-term forecast is proposed.
机译:本文讨论了使用机器学习技术解决预测问题的功能。在各个领域的建模和预测时间序列问题中,考虑了核算和正确处理非线性非平稳过程的问题。分析解决机器学习问题的阶段和方法。例如,考虑基于历史数据预测货币对的问题。给出了数据聚类中归一化方法的比较分析。对于这六个货币对,建议进行短期预测。

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