First Application of the Local Ensemble Tangent Linear Model (LETLM) to a Realistic Model of the Global AtmosphereSource: Monthly Weather Review:;2018:;volume 146:;issue 007::page 2247Author:Frolov, Sergey
,
Allen, Douglas R.
,
Bishop, Craig H.
,
Langland, Rolf
,
Hoppel, Karl W.
,
Kuhl, David D.
DOI: 10.1175/MWR-D-17-0315.1Publisher: American Meteorological Society
Abstract: AbstractThe local ensemble tangent linear model (LETLM) provides an alternative method for creating the tangent linear model (TLM) and adjoint of a nonlinear model that promises to be easier to maintain and more computationally scalable than earlier methods. In this paper, we compare the ability of the LETLM to predict the difference between two nonlinear trajectories of the Navy?s global weather prediction model at low resolution (2.5° at the equator) with that of the TLM currently used in the Navy?s four-dimensional variational (4DVar) data assimilation scheme. When compared to the pair of nonlinear trajectories, the traditional TLM and the LETLM have improved skill relative to persistence everywhere in the atmosphere, except for temperature in the planetary boundary layer. In addition, the LETLM was, on average, more accurate than the traditional TLM (error reductions of about 20% in the troposphere and 10% overall). Sensitivity studies showed that the LETLM was most sensitive to the number of ensemble members, with the performance gradually improving with increased ensemble size up to the maximum size attempted (400). Inclusion of physics in the LETLM ensemble leads to a significantly improved representation of the boundary layer winds (error reductions of up to 50%), in addition to improved winds and temperature in the free troposphere and in the upper stratosphere/lower mesosphere. The computational cost of the LETLM was dominated by the cost of ensemble propagation. However, the LETLM can be precomputed before the 4DVar data assimilation algorithm is executed, leading to a significant computational advantage.
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contributor author | Frolov, Sergey | |
contributor author | Allen, Douglas R. | |
contributor author | Bishop, Craig H. | |
contributor author | Langland, Rolf | |
contributor author | Hoppel, Karl W. | |
contributor author | Kuhl, David D. | |
date accessioned | 2019-09-19T10:04:35Z | |
date available | 2019-09-19T10:04:35Z | |
date copyright | 6/13/2018 12:00:00 AM | |
date issued | 2018 | |
identifier other | mwr-d-17-0315.1.pdf | |
identifier uri | http://yetl.yabesh.ir/yetl1/handle/yetl/4261255 | |
description abstract | AbstractThe local ensemble tangent linear model (LETLM) provides an alternative method for creating the tangent linear model (TLM) and adjoint of a nonlinear model that promises to be easier to maintain and more computationally scalable than earlier methods. In this paper, we compare the ability of the LETLM to predict the difference between two nonlinear trajectories of the Navy?s global weather prediction model at low resolution (2.5° at the equator) with that of the TLM currently used in the Navy?s four-dimensional variational (4DVar) data assimilation scheme. When compared to the pair of nonlinear trajectories, the traditional TLM and the LETLM have improved skill relative to persistence everywhere in the atmosphere, except for temperature in the planetary boundary layer. In addition, the LETLM was, on average, more accurate than the traditional TLM (error reductions of about 20% in the troposphere and 10% overall). Sensitivity studies showed that the LETLM was most sensitive to the number of ensemble members, with the performance gradually improving with increased ensemble size up to the maximum size attempted (400). Inclusion of physics in the LETLM ensemble leads to a significantly improved representation of the boundary layer winds (error reductions of up to 50%), in addition to improved winds and temperature in the free troposphere and in the upper stratosphere/lower mesosphere. The computational cost of the LETLM was dominated by the cost of ensemble propagation. However, the LETLM can be precomputed before the 4DVar data assimilation algorithm is executed, leading to a significant computational advantage. | |
publisher | American Meteorological Society | |
title | First Application of the Local Ensemble Tangent Linear Model (LETLM) to a Realistic Model of the Global Atmosphere | |
type | Journal Paper | |
journal volume | 146 | |
journal issue | 7 | |
journal title | Monthly Weather Review | |
identifier doi | 10.1175/MWR-D-17-0315.1 | |
journal fristpage | 2247 | |
journal lastpage | 2270 | |
tree | Monthly Weather Review:;2018:;volume 146:;issue 007 | |
contenttype | Fulltext |