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Class-Specific Error Bounds for Ensemble Classifiers

机译:集成分类器的特定于类的错误界限

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The generalization error, or probability of misclassification, of ensemble classifiers has been shown to be bounded above by a function of the mean correlation between the constituent (i.e., base) classifiers and their average strength. This bound suggests that increasing the strength and/or decreasing the correlation of an ensemble's base classifiers may yield improved performance under the assumption of equal error costs. However, this and other existing bounds do not directly address application spaces in which error costs are inherently unequal. For applications involving binary classification, Receiver Operating Characteristic (ROC) curves, performance curves that explicitly trade off false alarms and missed detections, are often utilized to support decision making. To address performance optimization in this context, we have developed a lower bound for the entire ROC curve that can be expressed in terms of the class-specific strength and correlation of the base classifiers.We present empirical analyses demonstrating the efficacy of these bounds in predicting relative classifier performance. In addition, we specify performance regions of the ROC curve that are naturally delineated by the class-specific strengths of the base classifiers and show that each of these regions can be associated with a unique set of guidelines for performance optimization of binary classifiers within unequal error cost regimes.
机译:综上所述,分类器的泛化误差或错误分类的概率已显示为构成(即基础)分类器与其平均强度之间的平均相关性的函数。此界限表明,在相等错误成本的假设下,增加集成基础分类器的强度和/或降低其相关性可能会提高性能。但是,此边界和其他现有边界并不能直接解决错误成本本来就不相等的应用程序空间。对于涉及二进制分类的应用,通常使用接收器工作特性(ROC)曲线,明确权衡虚假警报和错过的检测的性能曲线来支持决策。为了在这种情况下解决性能优化问题,我们为整个ROC曲线制定了一个下限,该下限可以根据特定于类别的强度和基本分类器的相关性来表示。 我们目前进行的经验分析表明了这些界限在预测相对分类器性能方面的功效。此外,我们指定了ROC曲线的性能区域,这些区域自然地由基本分类器的特定于类别的强度描绘出来,并表明这些区域中的每个区域都可以与在不等误差内的二进制分类器性能优化的唯一准则集相关联成本制度。

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