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首页> 外文期刊>Developmental psychology >Analyzing Developmental Processes on an Individual Level Using Nonstationary Time series Modeling
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Analyzing Developmental Processes on an Individual Level Using Nonstationary Time series Modeling

机译:使用非平稳时间序列建模在个体水平上分析发展过程

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Individuals change over time, often in complex ways. Generally, studies of change over time have combined individuals into groups for analysis, which is inappropriate in most, if not all, studies of development. The authors explain how to identify appropriate levels of analysis (individual vs. group) and demonstrate how to estimate changes in developmental processes over time using a multivariate nonstationary time series model. They apply this model to describe the changing relationships between a biological son and father and a stepson and stepfather at the individual level. The authors also explain how to use an extended Kalman filter with iteration and smoothing estimator to capture how dynamics change over time. Finally, they suggest further applications of the multivariate nonstationary time series model and detail the next steps in the development of statistical models used to analyze individual-level data.
机译:个人随着时间的流逝,通常以复杂的方式变化。通常,随着时间的变化而进行的研究已将个人分为几组进行分析,这在大多数(如果不是全部)发展研究中是不合适的。作者解释了如何确定适当的分析水平(个人还是小组),并演示了如何使用多元非平稳时间序列模型估算随着时间的发展过程的变化。他们应用此模型来描述亲生儿子和父亲与继子和继父之间个体之间不断变化的关系。作者还解释了如何将扩展的卡尔曼滤波器与迭代和平滑估计器一起使用,以捕获动力学随时间的变化。最后,他们建议了多元非平稳时间序列模型的进一步应用,并详细说明了用于分析个人级别数据的统计模型的开发下一步。

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