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Object-oriented remote sensing imagery classification accuracy assessment based on confusion matrix

机译:面向对象的遥感图像基于混乱矩阵的遥感图像分类精度评估

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This paper designs an object-based confusion matrix (OCM) classification accuracy assessment scheme to accurately estimate the overall and individual category classification accuracy. The estimation protocol and the sample data collection procedures are both taken into account. On the one hand, the two commonly used OCM construction methods based on object element and weighted by object area are analyzed, which indicate the classifier's distinguish ability and the thematic map accuracy respectively. With consideration that the object location uncertainty introduces the reference category uncertainty and may lead to the bias of thematic map accuracy assessment result, a novel fuzzy OCM construction method is proposed to more accurately assess the classification accuracy. On the other hand, a simple sample data collection strategy is proposed and validated to collect representative accuracy assessment samples. The object-oriented Quickbird image land use classification accuracy assessment experiment results are analyzed to validate the applicability of the proposed schemes. Suggestions on how to use object-based confusion matrix method in classification accuracy assessment are given in conclusion.
机译:本文设计了基于对象的混淆矩阵(OCM)分类准确性评估方案,以准确估计整体和个人类别分类准确性。估计协议和样本数据收集程序都被考虑在内。一方面,分析基于对象元素和由物体区域加权的两个常用的OCM构造方法,分别表示分类器的区分能力和主题映射精度。考虑到对象位置不确定性介绍了参考类别不确定性,并可能导致主题地图精度评估结果的偏差,提出了一种更准确地评估分类准确性的新型模糊OCM施工方法。另一方面,提出了一个简单的样本数据收集策略并验证以收集代表性准确性评估样本。分析面向对象的QuickBird图像土地使用分类精度评估实验结果以验证提出方案的适用性。关于如何在分类准确度评估中使用基于对象的混淆矩阵法的建议。

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