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A Monte Carlo Implementation of the Nonlinear Filtering Problem to Produce Ensemble Assimilations and Forecasts

Monthly Weather Review · 1999 · Vol. 127(12) · pp. 2741–2758
J. G. AndersonStephen Anderson

Abstract

Abstract Knowledge of the probability distribution of initial conditions is central to almost all practical studies of predictability and to improvements in stochastic prediction of the atmosphere. Traditionally, data assimilation for atmospheric predictability or prediction experiments has attempted to find a single “best” estimate of the initial state. Additional information about the initial condition probability distribution is then obtained primarily through heuristic techniques that attempt to generate representative perturbations around the best estimate. However, a classical theory for generating an estimate of the complete probability distribution of an initial state given a set of observations exists. This nonlinear filtering theory can be applied to unify the data assimilation and ensemble generation problem and to produce superior estimates of the probability distribution of the initial state of the atmosphere (or ocean) on regional or global scales. A Monte Carlo implementation of the fully n...

Meteorological Phenomena and SimulationsClimate variability and modelsAtmospheric and Environmental Gas DynamicsMonte Carlo methodData assimilationNonlinear systemComputer scienceStatistical physicsEconometricsMeteorologyEnvironmental scienceMathematicsPhysics
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References
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Monthly Weather Review · 1974 · 804 citations
Ensemble Forecasting at NMC: The Generation of Perturbations
Bulletin of the American Meteorological Society · 1993 · 1,239 citations
Deterministic Nonperiodic Flow
Journal of the Atmospheric Sciences · 1963 · 19,069 citations
The ECMWF Ensemble Prediction System: Methodology and validation
Quarterly Journal of the Royal Meteorological Society · 1996 · 1,617 citations
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