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首页> 外文期刊>Weather and forecasting >Ensemble Prediction with Different Spatial Resolutions for the 2014 Sochi Winter Olympic Games: The Effects of Calibration and Multimodel Approaches
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Ensemble Prediction with Different Spatial Resolutions for the 2014 Sochi Winter Olympic Games: The Effects of Calibration and Multimodel Approaches

机译:2014年索契冬季奥运会具有不同空间分辨率的集合预测:标定和多模型方法的影响

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摘要

Three ensemble prediction systems (EPSs) with different grid spacings are compared and evaluated with respect to their ability to predict wintertime weather in complex terrain. The experiment period was two-and a-half winter months in 2014, coinciding with the Forecast and Research in the Olympic Sochi Testbed (FROST) project, which took place during the Winter Olympic Games in Sochi, Russia. The global, synoptic scale ensemble system used is the IFS ENS from the European Centre for Medium-Range Weather Forecasts (ECMWF), and its performance is compared with both the operational pan-European Grand Limited Area Ensemble Prediction System (GLAMEPS) at 11-km horizontal resolution and the experimental regional convection-permitting HIRLAM ALADIN Regional Mesoscale Operational NWP in Europe (HARMONIE) EPS (HarmonEPS) at 2.5 km. Both GLAMEPS and HarmonEPS are multimodel systems, and it is seen that a large part of the skill in these systems comes from the multimodel approach, as long as all subensembles are performing reasonably. The number of members has less impact on the overall skill measurement. The relative importance of resolution and calibration is also assessed. Statistical calibration was applied and evaluated. In contrast to what is seen for the raw ensembles, the number of members, as well as the number of subensembles, is important for the calibrated ensembles. HarmonEPS shows greater potential than GLAMEPS for predicting wintertime weather, and also has an advantage after calibration.
机译:对三种具有不同网格间距的集合预报系统(EPS)进行了比较和评估,以预测它们在复杂地形中的冬季天气的能力。 2014年的冬季实验为两个半月,与俄罗斯索契冬季奥运会期间进行的奥林匹克索契试验床(FROST)项目的预测和研究相吻合。使用的全球天气尺度集合系统是欧洲中距离天气预报中心(ECMWF)的IFS ENS,并将其性能与11月份运行的泛欧洲大范围区域集合预报系统(GLAMEPS)进行了比较。 km的水平分辨率和实验性允许对流的HIRLAM ALADIN欧洲区域中尺度作战NWP(HARMONIE)EPS(HarmonEPS)在2.5 km。 GLAMEPS和HarmonEPS都是多模型系统,并且可以看出,只要所有子组件的性能都合理,这些系统中的很大一部分技能就来自多模型方法。成员数量对整体技能评估的影响较小。还评估了分辨率和校准的相对重要性。应用统计校准并进行评估。与原始合奏相比,成员数以及子合奏数对于校准后的合奏很重要。 HarmonEPS在预测冬季天气方面显示出比GLAMEPS更大的潜力,并且在校准后也具有优势。

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