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First and second order Markov chain models for synthetic generation of wind speed time series

机译:一阶和二阶马尔可夫链模型用于风速时间序列的综合生成

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摘要

Hourly wind speed time series data of two meteorological stations in Malaysia have been used for stochastic generation of wind speed data using the transition matrix approach of the Markov chain process. The transition probability matrices have been formed using two different approaches: the first approach involves the use of the first order transition probability matrix of a Markov chain, and the second involves the use of a second order transition probability matrix that uses the current and preceding values to describe the next wind speed value. The algorithm to generate the wind speed time series from the transition probability matrices is described. Uniform random number generators have been used for transition between successive time states and within state wind speed values. The ability of each approach to retain the statistical properties of the generated speed is compared with the observed ones. The main statistical properties used for this purpose are mean, standard deviation, median, percentiles, Weibull distribution parameters, autocorrelations and spectral density of wind speed values. The comparison of the observed wind speed and the synthetically generated ones shows that the statistical characteristics are satisfactorily preserved.
机译:马来西亚的两个气象站的每小时风速时间序列数据已用于通过马尔可夫链过程的过渡矩阵方法随机生成风速数据。已经使用两种不同的方法形成了转移概率矩阵:第一种方法涉及使用马尔可夫链的一阶转移概率矩阵,第二种涉及使用使用当前值和先前值的二阶转移概率矩阵。描述下一个风速值。描述了根据过渡概率矩阵生成风速时间序列的算法。统一随机数生成器已用于在连续时间状态之间以及状态风速值内进行转换。将每种方法保留生成速度的统计属性的能力与观察到的能力进行比较。用于此目的的主要统计属性是平均值,标准偏差,中位数,百分位数,威布尔分布参数,自相关和风速值的频谱密度。将观测到的风速与合成风速进行比较表明,令人满意地保留了统计特征。

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