Istvan Szunyogh

Affiliations: 
2009 Atmospheric and Oceanic Sciences University of Maryland, College Park, College Park, MD 
 2009- Texas A & M University, College Station, TX, United States 
Area:
Atmospheric Sciences, Atmospheric Chemistry, Remote Sensing
Website:
https://artsci.tamu.edu/atmos-science/contact/profiles/istvan-szunyogh.html
Google:
"Istvan Szunyogh"
Bio:

https://artsci.tamu.edu/atmos-science/_files/_documents/_profile-documents/szunyoghcv1.pdf
https://scholar.google.com/citations?user=L4JW_JUAAAAJ&hl=en
https://moe.met.fsu.edu/familytree/fullnamelist.php

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Parents

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Dezső Dévényi grad student 1994 Hungarian Academy of Sciences (Meteorology Tree)

Children

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David D. Kuhl grad student 2009 University of Maryland (MathTree)
Elizabeth A. Satterfield grad student 2010 Texas A & M (Meteorology Tree)
Dagmar Merkova grad student 2011 University of Maryland (Meteorology Tree)
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Publications

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Wikner A, Pathak J, Hunt BR, et al. (2021) Using data assimilation to train a hybrid forecast system that combines machine-learning and knowledge-based components. Chaos (Woodbury, N.Y.). 31: 053114
Wikner A, Pathak J, Hunt B, et al. (2020) Combining machine learning with knowledge-based modeling for scalable forecasting and subgrid-scale closure of large, complex, spatiotemporal systems. Chaos (Woodbury, N.Y.). 30: 053111
Žagar N, Szunyogh I. (2020) Comments on “What Is the Predictability Limit of Midlatitude Weather?” Journal of the Atmospheric Sciences. 77: 781-785
Arcomano T, Szunyogh I, Pathak J, et al. (2020) A Machine Learning‐Based Global Atmospheric Forecast Model Geophysical Research Letters. 47
Jia Y, Chang P, Szunyogh I, et al. (2019) A Modeling Strategy for the Investigation of the Effect of Mesoscale SST Variability on Atmospheric Dynamics Geophysical Research Letters. 46: 3982-3989
Herrera MA, Szunyogh I, Brainard A, et al. (2018) Regionally Enhanced Global (REG) 4D-Var Monthly Weather Review. 146: 4015-4038
Han F, Szunyogh I. (2018) A Technique for the Verification of Precipitation Forecasts and Its Application to a Problem of Predictability Monthly Weather Review. 146: 1303-1318
Battalio M, Szunyogh I, Lemmon M. (2018) Corrigendum to “Energetics of the Martian Atmosphere Using the Mars Analysis Correction Data Assimilation (MACDA) Dataset” [Icarus 276 (2016) 1--20] Icarus. 302: 565-567
Loeser CF, Herrera MA, Szunyogh I. (2017) An Assessment of the Performance of the Operational Global Ensemble Forecast Systems in Predicting the Forecast Uncertainty Weather and Forecasting. 32: 149-164
Parsons DB, Beland M, Burridge D, et al. (2017) THORPEX Research and the Science of Prediction Bulletin of the American Meteorological Society. 98: 807-830
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