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The role of misclassification in estimating proportions and an estimator of misclassification

机译:错误分类在估计比例中的作用和错误分类的估计器

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Dot grids are often used to estimate the proportion of land cover belonging to some class in an aerial photograph. Interpreter misclassification is an often-ignored source of error in dot-grid sampling that has the potential to significantly bias proportion estimates. For the case when the true class of items is unknown, we present a maximum-likelihood estimator of misclassification probability based on agreement between two interpreters. Two of the assumptions underlying the estimator are: (i) the probability that an interpreter makes a misclassification is constant, (ii) both interpreters have the same probability of misclassification. Simulation results suggest the estimator has acceptable performance when (ii) does not hold. This estimator can be used to investigate whether bias due to misclassification has exceeded a threshold, or to correct bias due misclassification.  MCFNS 2(2):78-85.
机译:点网格通常用于估计航空照片中属于某类的土地覆盖的比例。口译员错误分类是点网格采样中经常被忽略的错误源,它可能会显着偏向比例估计。对于真实项目的类别未知的情况,我们根据两个口译员之间的一致意见,提出了误分类概率的最大似然估计。估计量的两个假设为:(i)口译员进行错误分类的概率是恒定的,(ii)两名口译员具有相同的错误分类概率。仿真结果表明,当(ii)不成立时,估计器具有可接受的性能。该估计器可用于调查归类错误导致的偏差是否已超过阈值,或纠正归类错误导致的偏差。 MCFNS 2(2):78-85。

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