N: 90 S: -90 E: 180 W: -180
Description
Version 07B is the current version of the IMERG data sets. Older versions will no longer be available and have been superseded by Version 07.
The Integrated Multi-satellitE Retrievals for GPM (IMERG) is the unified U.S. algorithm that provides the multi-satellite precipitation product for the U.S. GPM team.
The precipitation estimates from the various precipitation-relevant satellite passive microwave (PMW) sensors comprising the GPM constellation are computed using the 2021 version of the Goddard Profiling Algorithm (GPROF2021), then gridded, intercalibrated to the GPM Combined Ku Radar-Radiometer Algorithm (CORRA) product, and merged into half-hourly 0.1°x0.1° (roughly 10x10 km) fields. Note that CORRA is adjusted to the monthly Global Precipitation Climatology Project (GPCP) Satellite-Gauge (SG) product over high-latitude ocean to correct known biases.
The half-hourly intercalibrated merged PMW estimates are then input to both a Morphing-Kalman Filter (KF) Lagrangian time interpolation scheme based on work by the Climate Prediction Center (CPC) and the Precipitation Estimation from Remotely Sensed Information using Artificial Neural Networks (PERSIANN) Dynamic Infrared–Rain Rate (PDIR) re-calibration scheme. In parallel, CPC assembles the zenith-angle-corrected, intercalibrated merged geo-IR fields and forwards them to PPS for input to the PERSIANN-CCS algorithm (supported by an asynchronous re-calibration cycle) which are then input to the KF morphing (quasi-Lagrangian time interpolation) scheme.
The KF morphing (supported by an asynchronous KF weights updating cycle) uses the PMW and IR estimates to create half-hourly estimates. Motion vectors for the morphing are computed by maximizing the pattern correlation of successive hours within each of the precipitation (PRECTOT), total precipitable liquid water (TQL), and vertically integrated vapor (TQV) data fields provided by the Modern-Era Retrospective Analysis for Research and Applications, Version 2 (MERRA-2) and Goddard Earth Observing System model Version 5 (GEOS-5) Forward Processing (FP) for the post-real-time (Final) Run and the near-real-time (Early and Late) Runs, respectively. The vectors from PRECTOT are chosen if available, else from TQL, if available, else from TQV. The KF uses the morphed data as the “forecast” and the IR estimates as the “observations”, with weighting that depends on the time interval(s) away from the microwave overpass time. The IR becomes important after about ±90 minutes away from the overpass time. Variable averaging in the KF is accounted for in a routine (Scheme for Histogram Adjustment with Ranked Precipitation Estimates in the Neighborhood, or SHARPEN) that compares the local histogram of KF morphed precipitation to the local histogram of forward- and backward-morphed microwave data and the IR.
The IMERG system is run twice in near-real time:
"Early" multi-satellite product ~4 hr after observation time using only forward morphing and
"Late" multi-satellite product ~14 hr after observation time, using both forward and backward morphing
and once after the monthly gauge analysis is received:
"Final", satellite-gauge product ~4 months after the observation month, using both forward and backward morphing and including monthly gauge analyses.
In V07, the near-real-time Early and Late half-hourly estimates have a monthly climatological concluding calibration based on averaging the concluding calibrations computed in the Final, while in the post-real-time Final Run the multi-satellite half-hourly estimates are adjusted so that they sum to the Final Run monthly satellite-gauge combination. In all cases the output contains multiple fields that provide information on the input data, selected intermediate fields, and estimation quality. In general, the complete calibrated precipitation, precipitation, is the data field of choice for most users.
Briefly describing the Final Run, the input precipitation estimates computed from the various satellite passive microwave sensors are intercalibrated to the CORRA product (because it is presumed to be the best snapshot TRMM/GPM estimate after adjustment to the monthly GPCP SG), then "forward/backward morphed" and combined with microwave precipitation-calibrated geo-IR fields, and adjusted with seasonal GPCP SG surface precipitation data to provide half-hourly and monthly precipitation estimates on a 0.1°x0.1° (roughly 10x10 km) grid over the globe. Precipitation phase is a diagnostic variable computed using analyses of surface temperature, humidity, and pressure. The current period of record is June 2000 to the present (delayed by about 4 months).
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Publications Citing This Dataset
| Title | Year Sort ascending | Author | Topic |
|---|---|---|---|
| A dataset of tracked mesoscale precipitation systems in the tropics | Russell, James, Rajagopal, Manikandan, Veals, Peter, Skok, Gregor, Zipser, Edward, TinocoMorales, Michell | Precipitation, Precipitation Amount, Precipitation Rate, Snow, Rain | |
| Disaggregating IMERG satellite precipitation over Czech Republic: an | Singh, Ujjwal, Nasreen, Sadaf, Tripathi, Gaurav, Mehrishi, Pragya, Pradhan, Rajani Kumar, Bestakova, Poppova, Singh, Vivek Vikram, Gouda, K C, Sharma, Laxmi Kant, Jalem, Kiran, Maca, Petr, Nidamanuri, Rama Rao, Raghubanshi, Akhilesh Singh, Markonis, Yannis, Oldrich, Rakovec, Hanel, Martin | Precipitation, Precipitation Amount, Precipitation Rate, Snow, Rain | |
| Different microphysics parameterizations of hydrometeor pathways in WRF | Onyejuruwa, Anselem, Hu, Zhenghua, Towfiqul Islam, Abu Reza Md, Olaniyan, Eniola, Than Oo, Kyaw | Precipitation, Precipitation Amount, Precipitation Rate, Snow, Rain | |
| Distinct impacts of different marine heatwaves on precipitation | Zeng, Shijie, Dong, Lu, Wu, Lixin, Song, Fengfei, Zhang, Zhengguang, Jing, Zhao | Precipitation, Precipitation Amount, Precipitation Rate, Snow, Rain | |
| Diurnal Propagation of Precipitation in Landfalling Tropical Cyclones | Zhang, Xinyan, Guo, Shan, Bao, Xuwei, Xu, Weixin | Precipitation, Precipitation Amount, Precipitation Rate, Snow, Rain | |
| Diurnal Variation of Cloud Physical Properties for Tropical Cyclones | Liu, Cuiping, Zhang, Feng, Ouyang, Huiling, Li, Wenwen, Zhao, Zhijun | Precipitation, Precipitation Amount, Precipitation Rate, Snow, Rain | |
| Dynamics and Energetics Associated With Two East Pacific Easterly Waves | Zhou, Yihao, Maloney, Eric D. | Precipitation, Precipitation Amount, Precipitation Rate, Snow, Rain | |
| Effects of Rain on the Ocean Radar Backscatter at Near-Nadir Incidence Angles: Insights from the Ku-band SWIM/CFOSAT under Low to Strong Wind Observations | Zhao, Xiaolu, Zhang, Biao, Oruba, Ludivine, Mouche, Alexis, Hauser, Daniele | Precipitation, Precipitation Amount, Precipitation Rate, Snow, Rain | |
| Elevation-Dependency of Diurnal Variation of Precipitation in Boreal | Ma, Jiali, Yu, Yubin, Han, Wei, Zhao, Dajun, Yao, Xiuping | Precipitation, Precipitation Amount, Precipitation Rate, Snow, Rain | |
| Enhancing Fine-Resolution Precipitation Estimates in Data-Scarce Regions: A Novel Spatial Downscaling and Correction Framework | Ullah, Sana, Shahzad, Naeem, Yan, Lei, Zuo, Zhengkang, Iqbal, Imran, Tareen, Mohammad Javed | Precipitation, Precipitation Amount, Precipitation Rate, Snow, Rain, Total Surface Precipitation Rate, Surface Pressure, Heat Flux, Longwave Radiation, Shortwave Radiation, Surface Temperature, Humidity, Evapotranspiration, Surface Winds, Soil Moisture/Water Content, Soil Temperature, Land Surface Temperature, Snow Water Equivalent, Runoff | |
| Enhanced hourly precipitation estimation using a geographically constrained multisource fusion network with cross attention | Jing, Yinghong, Li, Xinghua, Xu, Xiaoke, Lin, Liupeng, Liu, Zhenqi, She, Xiaojun, Li, Yao | Precipitation, Precipitation Amount, Precipitation Rate, Snow, Rain | |
| Climate change impact on rainfall erosivity factor using disaggregation model under CMIP6 shared socio-economic pathways | Das, Tapasranjan, Sarma, Arup Kumar | Precipitation, Precipitation Amount, Precipitation Rate, Snow, Rain | |
| Climatology of Convective Precipitation Systems Over the Arabian Peninsula Using ObjectTracking | Homoudi, Ahmed, Barfus, Klemens, Bernhofer, Christian, Mauder, Matthias | Precipitation, Precipitation Amount, Precipitation Rate, Snow, Rain | |
| Characteristics of Warm-Season Mesoscale Convective Systems with Different Movement Paths Generated over the Tibetan Plateau and Their Subseasonal ... | Qu, Lianglu, Yang, Ben, Huang, Anning, Tang, Jianping, Xu, Xin, Yang, Yuncheng, Wang, Yixiao, Dai, Guoqing, Zhang, Yaocun | Precipitation, Precipitation Amount, Precipitation Rate, Snow, Rain, Brightness Temperature | |
| Changes in clouds and the tropical circulation in global kilometer-scale simulations under different warming patterns | Tomassini, Lorenzo | Precipitation, Precipitation Amount, Precipitation Rate, Snow, Rain | |
| Characteristic Analysis of the Extreme Precipitation over South China | Chen, Meixia, Xue, Yufeng, Qiu, Juliao, Liu, Chunlei, Zhang, Shuqin, Xu, Jianjun, Zhu, Ziye | Precipitation, Precipitation Amount, Precipitation Rate, Snow, Rain | |
| Characteristics of Elevated Thunderstorms on the Cold Side of Fronts in China during the Period 201721 | Ma, Manman, Huang, Xiaogang, Fei, Jianfang, Li, Chao, Cheng, Xiaoping | Precipitation, Precipitation Amount, Precipitation Rate, Snow, Rain | |
| Erratum: wet bias of summer precipitation in the northwestern Tibetan Plateau in ERA5 is linked to overestimated lower-level southerly wind over the Plateau | Ou, Tinghai, Chen, Deliang, Tang, Jianping, Lin, Changgui, Wang, Xuejia, Kukulies, Julia, Lai, Hui-Wen | Precipitation, Precipitation Amount, Precipitation Rate, Snow, Rain | |
| Estimation of Ca<SUP>2+</SUP> wet deposition in the Northern Hemisphere | Chen, Wanying, Lu, Xingcheng, Xian, Chaofan, Sun, Xu, Chen, Yiang, Hu, Mingyun, Li, Geng, Fung, Jimmy C.H. | Precipitation, Precipitation Amount, Precipitation Rate, Snow, Rain | |
| Multiscale Processes Modulating the Duration of Extremely Persistent Heavy Rainfall: A Comparative Study of Two Winter Events | Liu, Haisheng, Huang, Xiaogang, Fei, Jianfang, Cheng, Xiaoping, Li, Xuhang, Zeng, Can, Zhang, Chi, Wu, Zhiyan, Yang, Wei | Precipitation, Precipitation Amount, Precipitation Rate, Snow, Rain | |
| Near-Surface Temperature Warming Modulated by Rain Layers at the Edge of a Warm Eddy | Hsu, Je-Yuan, Chang, Ming-Huei, Yang, Yiing Jang, Jan, Sen | Precipitation, Precipitation Amount, Precipitation Rate, Snow, Rain | |
| nextGEMS: entering the era of kilometer-scale Earth system modeling | Segura, Hans, Pedruzo-Bagazgoitia, Xabier, Weiss, Philipp, Muller, Sebastian K., Rackow, Thomas, Lee, Junhong, Dolores-Tesillos, Edgar, Benedict, Imme, Aengenheyster, Matthias, Aguridan, Razvan, Arduini, Gabriele, Baker, Alexander J., Bao, Jiawei, Bastin, Swantje, Baulenas, Eulalia, Becker, Tobias, Beyer, Sebastian, Bockelmann, Hendryk, Bruggemann, Nils, Brunner, Lukas, Cheedela, Suvarchal K., Das, Sushant, Denissen, Jasper, Dragaud, Ian, Dziekan, Piotr, Ekblom, Madeleine, Engels, Jan Frederik, Esch, Monika, Forbes, Richard, Frauen, Claudia, Freischem, Lilli, Garcia-Maroto, Diego, Geier, Philipp, Gierz, Paul, Gonzalez-Cervera, Alvaro, Grayson, Katherine, Griffith, Matthew, Gutjahr, Oliver, Haak, Helmuth, Hadade, Ioan, Haslehner, Kerstin, ul Hasson, Shabeh, Hegewald, Jan, Kluft, Lukas, Koldunov, Aleksei, Koldunov, Nikolay, Kolling, Tobias, Koseki, Shunya, Kosukhin, Sergey, Kousal, Josh, Kuma, Peter, Kumar, Arjun U., Li, Rumeng, Maury, Nicolas, Meindl, Maximilian, Milinski, Sebastian, Mogensen, Kristian, Niraula, Bimochan, Nowak, Jakub, Praturi, Divya Sri, Proske, Ulrike, Putrasahan, Dian, Redler, Rene, Santuy, David, Sarmany, Domokos, Schnur, Reiner, Scholz, Patrick, Sidorenko, Dmitry, Spat, Dorian, Sutzl, Birgit, Takasuka, Daisuke, Tompkins, Adrian, Uribe, Alejandro, Valentini, Mirco, Veerman, Menno, Voigt, Aiko, Warnau, Sarah, Wachsmann, Fabian, Wacawczyk, Marta, Wedi, Nils, Wieners, Karl-Hermann, Wille, Jonathan, Winkler, Marius, Wu, Yuting, Ziemen, Florian, Zimmermann, Janos, Bender, Frida A.-M., Bojovic, Dragana, Bony, Sandrine, Bordoni, Simona, Brehmer, Patrice, Dengler, Marcus, Dutra, Emanuel, Faye, Saliou, Fischer, Erich, van Heerwaarden, Chiel, Hohenegger, Cathy, Jarvinen, Heikki, Jochum, Markus, Jung, Thomas, Jungclaus, Johann H., Keenlyside, Noel S., Klocke, Daniel, Konow, Heike, Klose, Martina, Malinowski, Szymon, Martius, Olivia, Mauritsen, Thorsten, Mellado, Juan Pedro, Mieslinger, Theresa, Mohino, Elsa, Pawowska, Hanna, Peters-von Gehlen, Karsten, Sarre, Abdoulaye, Sobhani, Pajam, Stier, Philip, Tuppi, Lauri, Vidale, Pier Luigi, Sandu, Irina, Stevens, Bjorn | Precipitation, Precipitation Amount, Precipitation Rate, Snow, Rain | |
| Muted Amazon Rainfall Response to Deforestation in a Global | Yoon, Arim, Hohenegger, Cathy | Precipitation, Precipitation Amount, Precipitation Rate, Snow, Rain | |
| Neighborhood-scale reductions in heatwave burden projected under a 30% minimum tree cover scenario | Endreny, Theodore A., Ciolfi, Marco, Endreny, Anna, Chiocchini, Francesca, Calfapietra, Carlo | Precipitation, Precipitation Amount, Precipitation Rate, Snow, Rain | |
| Intensifying tropical cyclones in the Arabian Sea replenish depleting aquifers | Saleh, Hassan, Sultan, Mohamed, Yan, Eugene, Save, Himanshu, Elhaddad, Hesham, Karimi, Hadi, Abdelmohsen, Karem, Emil, Mustafa K., Qamshouai, Sara Al | Terrestrial Water Storage, Ground Water, Glacier Mass Balance/Ice Sheet Mass Balance, Precipitation, Precipitation Amount, Precipitation Rate, Snow, Rain |