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A Novel Algorithm to Generate Synthetic Data for Continuous-State Stationary Stochastic Process (Wind Data Application)

机译:一种生成连续状态静止随机过程的合成数据的新算法(风数据应用)

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Renewable energy resources have a great influence on country's future planning. However, building such investments needs reliable and accurate studies based on huge information and historical data, that might be considered a great challenge. Thus, generating some form of artificial or what they call it “synthetic” patterns that give the same hidden information and characteristics as the original records are so important. In this paper real wind speed data is gathered for a very promising candidate location. This dataset is used extensively to generate a synthetic data for planning/feasibility purposes for wind-farm project planning. Moreover, most commonly considered stochastic techniques were utilized to either model, extract all main probabilistic features of original data and hence; generate the required synthetic data. In addition, this paper proposed a new stochastic model that could generate synthetic wind data extremely has the same features as the original records.
机译:可再生能源对国家未来规划有很大影响。然而,根据巨额信息和历史数据,建立此类投资需要可靠和准确的研究,这可能被认为是一个巨大的挑战。因此,生成某种形式的人为或它们称之为“合成”模式,其具有与原始记录如此重要的相同隐藏信息和特征。在本文中,可以获得真正的风速数据以获得非常有前途的候选地点。该数据集广泛使用,以生成用于风电场项目规划的规划/可行性目的的合成数据。此外,最常用的随机技术用于模型,提取原始数据的所有主要概率特征,因此;生成所需的合成数据。此外,本文提出了一种新的随机模型,可以生成合成风数据与原始记录具有相同的功能。

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