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Performance metrics for the assessment of satellite data products: an ocean color case study

机译:评估卫星数据产品的性能指标:海洋案例研究

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摘要

Performance assessment of ocean color satellite data has generally relied on statistical metrics chosen for their common usage and the rationale for selecting certain metrics is infrequently explained. Commonly reported statistics based on mean squared errors, such as the coefficient of determination (r2), root mean square error, and regression slopes, are most appropriate for Gaussian distributions without outliers and, therefore, are often not ideal for ocean color algorithm performance assessment, which is often limited by sample availability. In contrast, metrics based on simple deviations, such as bias and mean absolute error, as well as pair-wise comparisons, often provide more robust and straightforward quantities for evaluating ocean color algorithms with non-Gaussian distributions and outliers. This study uses a SeaWiFS chlorophyll-a validation data set to demonstrate a framework for satellite data product assessment and recommends a multi-metric and user-dependent approach that can be applied within science, modeling, and resource management communities.
机译:海洋彩色卫星数据的性能评估通常依赖于为它们的通用用法而选择的统计指标,并且很少解释选择某些指标的原理。基于均方误差的常用报告统计数据,例如确定系数(r 2 ),均方根误差和回归斜率,最适合没有异常值的高斯分布,因此通常是对于海洋颜色算法性能评估而言,它并不是理想的选择,而后者通常受到样品可用性的限制。相反,基于简单偏差(例如偏差和均值绝对误差)以及成对比较的度量标准通常为评估具有非高斯分布和离群值的海洋颜色算法提供了更强大和直接的参数。这项研究使用SeaWiFS叶绿素a验证数据集来演示卫星数据产品评估的框架,并建议一种可用于科学,建模和资源管理社区的多指标和用户依赖的方法。

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