Comprehensive Comparisons of State-of-the-Art Gridded Precipitation Estimates for Hydrological Applications over Southern China
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Xiaohong Chen | Da Liu | Jing Qiu | Ziqiang Ma | Zhen Gao | Bensheng Huang | Xiaohong Chen | Bensheng Huang | Jing Qiu | Z. Gao | Da Liu | Ziqiang Ma | Ziqiang Ma | Zhen Gao
[1] Zheng Yu,et al. Case Study of a Retrieval Method of 3D Proxy Reflectivity from FY-4A Lightning Data and Its Impact on the Assimilation and Forecasting for Severe Rainfall Storms , 2020, Remote. Sens..
[2] E. Sudicky,et al. Evaluation of variability among different precipitation products in the Northern Great Plains , 2019, Journal of Hydrology: Regional Studies.
[3] S. Sorooshian,et al. A Review of Global Precipitation Data Sets: Data Sources, Estimation, and Intercomparisons , 2018 .
[4] Faisal Hossain,et al. Understanding the Dependence of Satellite Rainfall Uncertainty on Topography and Climate for Hydrologic Model Simulation , 2013, IEEE Transactions on Geoscience and Remote Sensing.
[5] Jaap Schellekens,et al. MSWEP: 3-hourly 0.25° global gridded precipitation (1979–2015) by merging gauge, satellite, and reanalysis data , 2016 .
[6] Mark S. Kulie,et al. Evaluation of latest GPM-Era high-resolution satellite precipitation products during the May 2017 Guangdong extreme rainfall event , 2019, Atmospheric Research.
[7] K. Cook,et al. Observed relationship between the Turkana low-level jet and boreal summer convection , 2019, Climate Dynamics.
[8] Ehsan Sharifi,et al. Performance of the State-Of-The-Art Gridded Precipitation Products over Mountainous Terrain: A Regional Study over Austria , 2019, Remote. Sens..
[9] Yang Hong,et al. Assessing the potential of satellite-based precipitation estimates for flood frequency analysis in ungauged or poorly gauged tributaries of China's Yangtze River basin , 2017 .
[10] Xue Li,et al. Assessment of GPM IMERG and radar quantitative precipitation estimation (QPE) products using dense rain gauge observations in the Guangdong-Hong Kong-Macao Greater Bay Area, China , 2020 .
[11] Y. Hong,et al. Accounting for spatiotemporal errors of gauges: A critical step to evaluate gridded precipitation products , 2018 .
[12] Yang Hong,et al. Hydrologic evaluation of Multisatellite Precipitation Analysis standard precipitation products in basins beyond its inclined latitude band: A case study in Laohahe basin, China , 2010 .
[13] Eric F. Wood,et al. MSWEP V2 Global 3-Hourly 0.1° Precipitation: Methodology and Quantitative Assessment , 2018, Bulletin of the American Meteorological Society.
[14] Md. Atiqul Islam,et al. Assessment and comparison of five satellite precipitation products in Australia , 2020 .
[15] D. Hu,et al. Spatio-temporal accuracy evaluation of three high-resolution satellite precipitation products in China area , 2020, Atmospheric Research.
[16] Yang Hong,et al. Statistical and hydrological evaluation of TRMM-based Multi-satellite Precipitation Analysis over the Wangchu Basin of Bhutan: Are the latest satellite precipitation products 3B42V7 ready for use in ungauged basins? , 2013 .
[17] K. Sunilkumar,et al. Comprehensive evaluation of multisatellite precipitation estimates over India using gridded rainfall data , 2015 .
[18] Misako Kachi,et al. Gauge-Adjusted Global Satellite Mapping of Precipitation , 2019, IEEE Transactions on Geoscience and Remote Sensing.
[19] Soroosh Sorooshian,et al. The PERSIANN family of global satellite precipitation data: a review and evaluation of products , 2018, Hydrology and Earth System Sciences.
[20] Liguang Jiang,et al. How do GPM IMERG precipitation estimates perform as hydrological model forcing? Evaluation for 300 catchments across Mainland China , 2019, Journal of Hydrology.
[21] Haizhi Liu,et al. Precipitation Characteristics of an Abrupt Heavy Rainfall Event over the Complex Terrain of Southwest China Observed by the FY-4A Satellite and Doppler Weather Radar , 2020, Water.
[22] Peng Bai,et al. Suitability of Satellite-Based Precipitation Products for Water Balance Simulations Using Multiple Observations in a Humid Catchment , 2019, Remote. Sens..
[23] Raghavan Srinivasan,et al. Improved Hydrological Decision Support System for the Lower Mekong River Basin Using Satellite-Based Earth Observations , 2018, Remote. Sens..
[24] Yan Shen,et al. A high spatiotemporal gauge‐satellite merged precipitation analysis over China , 2014 .
[25] Y. Kerr,et al. A daily 25 km short-latency rainfall product for data-scarce regions based on the integration of the Global Precipitation Measurement mission rainfall and multiple-satellite soil moisture products , 2020, Hydrology and Earth System Sciences.
[26] F. Yuan,et al. Evaluation of hydrological utility of IMERG Final run V05 and TMPA 3B42V7 satellite precipitation products in the Yellow River source region, China , 2018, Journal of Hydrology.
[27] Y. Hong,et al. An updated moving window algorithm for hourly-scale satellite precipitation downscaling: A case study in the Southeast Coast of China , 2020 .
[28] Yang Hong,et al. Documentation of multifactorial relationships between precipitation and topography of the Tibetan Plateau using spaceborne precipitation radars , 2018 .
[29] G. Tang,et al. Spatial Variability and Linkage Between Extreme Convections and Extreme Precipitation Revealed by 22‐Year Space‐Borne Precipitation Radar Data , 2020, Geophysical Research Letters.
[30] Yang Hong,et al. Have satellite precipitation products improved over last two decades? A comprehensive comparison of GPM IMERG with nine satellite and reanalysis datasets , 2020 .
[31] Christian Massari,et al. On the performance of satellite precipitation products in riverine flood modeling: a review. , 2018 .
[32] B. Krzeminski,et al. ERA5-based global meteorological wildfire danger maps , 2020, Scientific Data.
[33] Jian Zhou,et al. Comprehensive evaluation of latest GPM era IMERG and GSMaP precipitation products over mainland China , 2020 .
[34] K. Taylor. Summarizing multiple aspects of model performance in a single diagram , 2001 .
[35] Gonzalo E. Espinoza-Dávalos,et al. Evaluating the Benefits of Merging Near-Real-Time Satellite Precipitation Products: A Case Study in the Kinu Basin Region, Japan , 2019, Journal of Hydrometeorology.
[36] J. Janowiak,et al. CMORPH: A Method that Produces Global Precipitation Estimates from Passive Microwave and Infrared Data at High Spatial and Temporal Resolution , 2004 .
[37] Hao Gao,et al. Application of Fengyun-4 Satellite to Flood Disaster Monitoring through a Rapid Multi-Temporal Synthesis Approach , 2020, Journal of Meteorological Research.
[38] Soroosh Sorooshian,et al. Evaluation of PERSIANN-CCS rainfall measurement using the NAME event rain gauge network , 2007 .
[39] Bin Yong,et al. Evaluation and Hydrological Utility of the Latest GPM IMERG V5 and GSMaP V7 Precipitation Products over the Tibetan Plateau , 2018, Remote. Sens..