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Sampling Uncertainty and Confidence Intervals for the Brier Score and Brier Skill Score

机译:Brier分数和Brier技能分数的不确定性和置信区间抽样

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For probability forecasts. the Brier score and Brier skill score are commonly used verification measures of forecast accuracy and skill. Using sampling theory, analytical expressions are derived to estimate their sampling uncertainties. The Brier Score is an unbiased estimator of the accuracy, and an exact expression defines its sampling variance. The Brier skill score (with climatology as a reference forecast) is a biased estimator. and approximations are needed to estimate its bias and sampling variance. The uncertainty estimators depend only on the moments of the forecasts and observations. so it is easy to routinely compute them at the same time as the Brier score and skill score. The resulting uncertainty estimates can be used to construct error bars or confidence intervals for the verification measures, or perform hypothesis testing. Monte Carlo experiments using synthetic forecasting examples illustrate the performance of the expressions. In general, the estimates provide very reliable information on uncertainty. However, the quality of an estimate depends oil both the sample size and the occurrence frequency of the forecast event. The examples also illustrate that with infrequently occuring events, verification sample sizes of a few hundred forecast observation pairs are needed to establish that a forecast is skillful because of the large uncertainties that exist.
机译:用于概率预测。 Brier分数和Brier技能分数是预测准确性和技能的常用验证指标。使用采样理论,可以导出分析表达式以估计其采样不确定性。 Brier分数是准确性的无偏估计量,精确表达式定义了其采样方差。 Brier技能评分(以气候学为参考预测)是有偏差的估计量。需要近似值来估计其偏差和采样方差。不确定性估计量仅取决于预测和观察的时刻。因此很容易在Brier分数和技能分数的同时常规地计算它们。所得的不确定性估计值可用于构建验证措施的误差线或置信区间,或执行假设检验。使用合成预测示例进行的蒙特卡洛实验说明了表达式的性能。通常,这些估计提供了非常可靠的不确定性信息。但是,估计的质量取决于样本量和预测事件的发生频率。这些示例还说明,对于不经常发生的事件,由于存在大量不确定性,因此需要几百个预测观察对的验证样本大小才能确定预测是否熟练。

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