Vertical Structure of Global Oceanic Summer Precipitation Identified from GPM GMI EOF Analysis

This study extends an Empirical Orthogonal Function (EOF)-based diagnostic framework to a global scale to characterize oceanic precipitation systems during hemispheric summer, applied to multi-channel Polarization Corrected Temperature (PCT) observations from the Global Precipitation Measurement (GPM) Microwave Imager (GMI). The EOF framework condenses multi-channel microwave variability into a two-dimensional coordinate space defined by the first two principal components (PC1 and PC2), providing a physically interpretable structural representation of precipitation systems. PC1 represents bulk hydrometeor loading; its global distribution is characterized by elevated values in the ITCZ, Asian monsoon regions, and major midlatitude storm-track belts. PC2 modulates the relative contributions of upper-level ice scattering and lower-level liquid emission, characterizing vertical phase partitioning within the column. Collocated GPM Dual-frequency Precipitation Radar (DPR) observations demonstrate that the PC coordinates correspond systematically to three-dimensional reflectivity structures across both convective and stratiform regimes. This partitioning exhibits a systematic meridional contrast, shifting toward greater ice-phase contribution in the tropics and greater liquid-phase contribution across the midlatitudes—consistent with DPR-observed reflectivity profiles, storm-top height, and the Ice-to-Rain Path Ratio (IRPR). The EOF framework provides an observation-based reference for evaluating microphysical representations in numerical models and satellite precipitation retrieval algorithms.

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Publication Details

Journal
Atmosphere
Published
2026-09-16
DOI
https://doi.org/10.3390/atmos17090901
Primary Topic
Meteorological Phenomena and Simulations
Type
article
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article

Vertical Structure of Global Oceanic Summer Precipitation Identified from GPM GMI EOF Analysis

Eun‐Kyoung Seo
Atmosphere
Meteorological Phenomena and Simulations
article

Vertical Structure of Global Oceanic Summer Precipitation Identified from GPM GMI EOF Analysis

Eun‐Kyoung Seo
article en

Abstract

This study extends an Empirical Orthogonal Function (EOF)-based diagnostic framework to a global scale to characterize oceanic precipitation systems during hemispheric summer, applied to multi-channel Polarization Corrected Temperature (PCT) observations from the Global Precipitation Measurement (GPM) Microwave Imager (GMI). The EOF framework condenses multi-channel microwave variability into a two-dimensional coordinate space defined by the first two principal components (PC1 and PC2), providing a physically interpretable structural representation of precipitation systems. PC1 represents bulk hydrometeor loading; its global distribution is characterized by elevated values in the ITCZ, Asian monsoon regions, and major midlatitude storm-track belts. PC2 modulates the relative contributions of upper-level ice scattering and lower-level liquid emission, characterizing vertical phase partitioning within the column. Collocated GPM Dual-frequency Precipitation Radar (DPR) observations demonstrate that the PC coordinates correspond systematically to three-dimensional reflectivity structures across both convective and stratiform regimes. This partitioning exhibits a systematic meridional contrast, shifting toward greater ice-phase contribution in the tropics and greater liquid-phase contribution across the midlatitudes—consistent with DPR-observed reflectivity profiles, storm-top height, and the Ice-to-Rain Path Ratio (IRPR). The EOF framework provides an observation-based reference for evaluating microphysical representations in numerical models and satellite precipitation retrieval algorithms.

AtmosphereVol. 17(9)
Kongju National University (KR)
Life below water
Openalex Percentile: Top 15%
Meteorological Phenomena and Simulations
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