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      The probability of unprecedented high rainfall in wine regions of northern Portugal

      , , , ,
      Climate Services
      Elsevier BV

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          The climate hazards infrared precipitation with stations—a new environmental record for monitoring extremes

          The Climate Hazards group Infrared Precipitation with Stations (CHIRPS) dataset builds on previous approaches to ‘smart’ interpolation techniques and high resolution, long period of record precipitation estimates based on infrared Cold Cloud Duration (CCD) observations. The algorithm i) is built around a 0.05° climatology that incorporates satellite information to represent sparsely gauged locations, ii) incorporates daily, pentadal, and monthly 1981-present 0.05° CCD-based precipitation estimates, iii) blends station data to produce a preliminary information product with a latency of about 2 days and a final product with an average latency of about 3 weeks, and iv) uses a novel blending procedure incorporating the spatial correlation structure of CCD-estimates to assign interpolation weights. We present the CHIRPS algorithm, global and regional validation results, and show how CHIRPS can be used to quantify the hydrologic impacts of decreasing precipitation and rising air temperatures in the Greater Horn of Africa. Using the Variable Infiltration Capacity model, we show that CHIRPS can support effective hydrologic forecasts and trend analyses in southeastern Ethiopia.
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            Probable Inference, the Law of Succession, and Statistical Inference

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              An Ensemble Version of the E-OBS Temperature and Precipitation Data Sets

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                Author and article information

                Contributors
                (View ORCID Profile)
                Journal
                Climate Services
                Climate Services
                Elsevier BV
                24058807
                April 2023
                April 2023
                : 30
                : 100363
                Article
                10.1016/j.cliser.2023.100363
                88f03a10-839b-4c84-a6a6-465cfe0afcdb
                © 2023

                https://www.elsevier.com/tdm/userlicense/1.0/

                http://creativecommons.org/licenses/by-nc-nd/4.0/

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