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A Neural Network Algorithm for the Prediction of Events in Multidimensional Time Series and Its Application to the Analysis of Data in Cosmic Physics

机译:多维时间序列中事件预测的神经网络算法及其在宇宙物理数据分析中的应用

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摘要

Many practical problems are related to the search for interconnections between the behavior of complex objects and relatively rare events caused by this behavior or correlated with it. In such cases, it can be assumed that the occurrence of each event is preceded by some phenomenon, i.e., a combination of values of the features describing the object under consideration in a known range of time delays. This work continues the investigation of the neural-network based method for analyzing such objects developed by authors elsewhere. The method aims at revealing morphological and dynamical features that cause the event or precede its occur-rence.
机译:许多实际问题与在复杂对象的行为和由该行为引起或与其相关的相对罕见事件之间的相互联系有关。在这种情况下,可以假定每个事件的发生都带有某种现象,即在已知的时间延迟范围内描述所考虑对象的特征值的组合。这项工作继续研究基于神经网络的方法,以分析其他地方的作者开发的此类对象。该方法旨在揭示导致事件发生或发生之前的形态和动力学特征。

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