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Interpreting the change detection error matrix

机译:解释变化检测误差矩阵

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Two different matrices are commonly reported in assessment of change detection accuracy: (1) single date error matrices and (2) binary changeo change error matrices. The third, less common form of reporting, is the transition error matrix. This paper discuses the relation between these matrices. First, it is shown that the transition error matrix implicitly measures temporal correlation in classification errors. Based on two assumptions (no correlation, maximum correlation), the single date error matrices can be used to obtain a most pessimistic and most optimistic estimate of the transition accuracy. Next, it is shown that the changeo change error matrix does not quantify certain classification errors. It is shown that changeo change error matrix can be used complementary to the full transition error matrix in efforts to improve transition detection accuracy. Despite its advantages, the transition error matrix is only very rarely reported, while it is of interest to all those interested in the accuracy of transitions (from-to) in change detection.
机译:评估变更检测准确性通常会报告两种不同的矩阵:(1)单日错误矩阵和(2)二进制变更/无变更误差矩阵。第三种不太常见的报告形式是过渡误差矩阵。本文讨论了这些矩阵之间的关系。首先,表明过渡误差矩阵隐式地测量了分类误差中的时间相关性。基于两个假设(无相关性,最大相关性),单日误差矩阵可用于获得过渡精度的最悲观和最乐观的估计。接下来,示出了改变/不改变误差矩阵不量化某些分类误差。结果表明,在努力提高过渡检测精度的情况下,可以将变化/不变变化误差矩阵与完整的过渡误差矩阵互补使用。尽管有其优点,但很少报告过渡误差矩阵,而所有对变化检测中的过渡精度(从到)感兴趣的人都感兴趣。

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