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Implementation of Chaotic Analysis on River Discharge Time Series

机译:河水排放时间序列混沌分析的实现

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The gauged river data play an important role in modeling, planning and management of the river basins. Among the hydrological data, the daily discharge data seem to be more significant for determining the amount of energy production and the control the risks of floods and drought. Hence, the data need correct measurement, analysis, and reliable estimates. The purpose of the paper is to investigate the question whether all the stations in a river basin exhibit chaotic behavior. For this purpose, the daily discharge data of four gauge stations are examined by using three nonlinear data analysis methods: 1) phase space reconstruction; 2) correlation dimension; and 3) local approximation where all those methods provide identification of chaotic behaviors. The results show that all stations exhibit chaotic character. Taking into account the proven chaotic characteristic of the stations, local approximation method is applied to observe the prediction accuracy. Considering the fact that global warming is a serious threat on natural resources, the prediction accuracy is becoming a key factor to ensure sustainability. Hence, this study is a good example on the implementation of chaotic analysis by means of the obtained results from the methods.
机译:测得的河流数据在流域的建模,规划和管理中起着重要作用。在水文数据中,每日排放量数据对于确定能源产量以及控制洪水和干旱风险似乎更为重要。因此,数据需要正确的测量,分析和可靠的估计。本文的目的是调查流域中所有站点是否都表现出混沌行为的问题。为此,使用三种非线性数据分析方法检查了四个水位站的日排放数据:1)相空间重构; 2)相关维度; 3)局部逼近,所有这些方法都可以识别混沌行为。结果表明,所有测站均表现出混沌特性。考虑到站的混沌特性,采用局部逼近法观测其预测精度。考虑到全球变暖对自然资源的严重威胁这一事实,预测的准确性正成为确保可持续性的关键因素。因此,本研究是通过方法获得的结果进行混沌分析的一个很好的例子。

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