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Three- and Four-Dimensional Variational Assimilation with a General Circulation Model of the Tropical Pacific Ocean. Part Ⅰ: Formulation, Internal Diagnostics, and Consistency Checks

机译:具有热带太平洋总环流模型的三维和四维变分同化。第一部分:配方,内部诊断和一致性检查

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Three- and four-dimensional variational assimilation (3DVAR and 4DVAR) systems have been developed for the Ocean Parallelise (OPA) ocean general circulation model (OGCM) of the Laboratoire d'Oceanographie Dynamique et de Climatologie. An iterative incremental approach is used to minimize a cost function that measures the statistically weighted squared differences between the observational information and their model equivalent. The control variable of the minimization problem is an increment to the background estimate of the model initial conditions at the beginning of each assimilation window. In 3DVAR, the increment is transported between observation times within the window using a persistence model, while in 4DVAR a dynamical model derived from the tangent linear (TL) of the OGCM is used. Both the persistence and TL models are shown to provide reasonably good descriptions of the evolution of typical errors over the 10- and 30-day widths of the assimilation windows used in the authors' 3DVAR and 4DVAR experiments, respectively. The present system relies on a univariate formulation of the background-error covariance matrix. In practice, the background-error covariances are specified implicitly within a change of control variable designed to improve the conditioning of the minimization problem. Horizontal and vertical correlation functions are modeled using a filter based on a numerical integration of a diffusion equation. The background-error variances are geographically dependent and specified from the model climatology. Single observation experiments are presented to illustrate how the TL dynamics act to modify these variances in a flow-dependent way by diminishing their values in the mixed layer and by displacing the maximum value of the variance to the level of the background thermocline. The 3DVAR and 4DVAR systems have been applied to a tropical Pacific version of OPA and cycled over the period 1993-98 using in situ temperature observations from the Global Temperature and Salinity Pilot Programme. The overall effect of the data assimilation is to reduce a large bias in the thermal field, which was present in the control. The fit to the data in 4DVAR is better than in 3DVAR, and within the specified observation-error standard deviation. Intermittent updating of the linearization state of the TL model is shown to be an important feature of the incremental 4DVAR algorithm and contributes significantly to improving the fit to the data.
机译:已经针对海洋学实验室动力学和气候学实验室的海洋平行(OPA)海洋总环流模型(OGCM)开发了3维和4维变分同化(3DVAR和4DVAR)系统。迭代增量方法用于最小化度量观测信息及其等效模型之间的统计加权平方差的成本函数。最小化问题的控制变量是每个同化窗口开始时模型初始条件的背景估计的增量。在3DVAR中,使用持久性模型在窗口内的观察时间之间传输增量,而在4DVAR中,使用从OGCM的切线线性(TL)得出的动力学模型。持久性模型和TL模型都可以很好地描述作者分别在3DVAR和4DVAR实验中使用的同化窗口在10天和30天宽度内典型误差的演变。本系统依赖于背景误差协方差矩阵的单变量表述。实际上,背景误差协方差是在控制变量的更改内隐式指定的,该变量旨在改善最小化问题的条件。使用基于扩散方程的数值积分的滤波器对水平和垂直相关函数进行建模。背景误差方差在地理上是相关的,并由模型气候学确定。提出了单个观测实验,以说明TL动力学如何通过减少混合层中的值并将方差的最大值移至背景温跃线的水平,以流量相关的方式修改这些方差。 3DVAR和4DVAR系统已应用于热带太平洋版本的OPA,并使用全球温度和盐度试验计划的现场温度观测值在1993-98年期间进行了循环。数据同化的总体效果是减少控件中存在的热场中的较大偏差。在指定的观察误差标准偏差内,对4DVAR中数据的拟合优于3DVAR中的数据。 TL模型的线性化状态的间歇性更新被证明是增量4DVAR算法的重要特征,并极大地改善了对数据的拟合度。

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