Spatial Correction of Multimodel Ensemble Subseasonal Precipitation Forecasts over North America Using Local Laplacian Eigenfunctions
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作者:
Vigaud, N.
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Columbia Univ, Earth Inst, Int Res Inst Climate & Soc, Palisades, NY 10964 USAColumbia Univ, Earth Inst, Int Res Inst Climate & Soc, Palisades, NY 10964 USA
Vigaud, N.
[1
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Tippett, M. K.
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Columbia Univ, Dept Appl Phys & Appl Math, New York, NY USAColumbia Univ, Earth Inst, Int Res Inst Climate & Soc, Palisades, NY 10964 USA
Tippett, M. K.
[2
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Yuan, J.
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Columbia Univ, Earth Inst, Int Res Inst Climate & Soc, Palisades, NY 10964 USAColumbia Univ, Earth Inst, Int Res Inst Climate & Soc, Palisades, NY 10964 USA
Yuan, J.
[1
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Robertson, A. W.
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Columbia Univ, Earth Inst, Int Res Inst Climate & Soc, Palisades, NY 10964 USAColumbia Univ, Earth Inst, Int Res Inst Climate & Soc, Palisades, NY 10964 USA
Robertson, A. W.
[1
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Acharya, N.
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Columbia Univ, Earth Inst, Int Res Inst Climate & Soc, Palisades, NY 10964 USAColumbia Univ, Earth Inst, Int Res Inst Climate & Soc, Palisades, NY 10964 USA
Acharya, N.
[1
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机构:
[1] Columbia Univ, Earth Inst, Int Res Inst Climate & Soc, Palisades, NY 10964 USA
[2] Columbia Univ, Dept Appl Phys & Appl Math, New York, NY USA
The extent to which submonthly forecast skill can be increased by spatial pattern correction is examined in probabilistic rainfall forecasts of weekly and week-3-4 averages, constructed with extended logistic regression (ELR) applied to three ensemble prediction systems from the Subseasonal-to-Seasonal (S2S) project database. The new spatial correction method projects the ensemble-mean rainfall neighboring each grid point onto Laplacian eigenfunctions and then uses those amplitudes as predictors in the ELR. Over North America, individual and multimodel ensemble (MME) forecasts that are based on spatially averaged rainfall (e.g., first Laplacian eigenfunction) are characterized by good reliability, better sharpness, and higher skill than those using the gridpoint ensemble mean. The skill gain is greater for week-3-4 averages than week-3 leads and is largest for MME week-3-4 outlooks that are almost 2 times as skillful as MME week-3 forecasts over land. Skill decreases when using more Laplacian eigenfunctions as predictors, likely because of the difficulty in fitting additional parameters from the relatively short common reforecast period. Higher skill when increasing reforecast length indicates potential for further improvements. However, the current design of most subseasonal forecast experiments may prove to be a limit on the complexity of correction methods. Relatively high skill for week-3-4 outlooks with winter starts during El Nino and MJO phases 2-3 and 6-7 reflects particular opportunities for skillful predictions.
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Abdus Salaam Int Ctr Theoret Phys, Earth Syst Phys Sect, Trieste, Italy
Columbia Univ, Earth Inst, Int Res Inst Climate & Soc, 61 Route 9W, New York, NY 10964 USA
King Abdulaziz Univ, Ctr Excellence Climate Change Res CECCR, Jeddah, Saudi ArabiaAbdus Salaam Int Ctr Theoret Phys, Earth Syst Phys Sect, Trieste, Italy
Ehsan, Muhammad Azhar
Tippett, Michael K.
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Columbia Univ, Dept Appl Phys & Appl Math, New York, NY 10964 USAAbdus Salaam Int Ctr Theoret Phys, Earth Syst Phys Sect, Trieste, Italy
Tippett, Michael K.
Kucharski, Fred
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Abdus Salaam Int Ctr Theoret Phys, Earth Syst Phys Sect, Trieste, Italy
King Abdulaziz Univ, Ctr Excellence Climate Change Res CECCR, Jeddah, Saudi ArabiaAbdus Salaam Int Ctr Theoret Phys, Earth Syst Phys Sect, Trieste, Italy
Kucharski, Fred
Almazroui, Mansour
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King Abdulaziz Univ, Ctr Excellence Climate Change Res CECCR, Jeddah, Saudi ArabiaAbdus Salaam Int Ctr Theoret Phys, Earth Syst Phys Sect, Trieste, Italy
Almazroui, Mansour
Ismail, Muhammad
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King Abdulaziz Univ, Ctr Excellence Climate Change Res CECCR, Jeddah, Saudi ArabiaAbdus Salaam Int Ctr Theoret Phys, Earth Syst Phys Sect, Trieste, Italy