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Using measures of similarity and inclusion for multiple classifier fusion by decision templates

机译:通过决策模板将相似性和包含性度量用于多个分类器融合

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摘要

Decision templates (DT) are a technique for classifier fusion for continuous-valued individual classifier outputs. The individual outputs considered here sum up to the same value (e.g., statistical classifiers, yielding some estimates of the posterior probabilities for the classes). First, the DT fusion algorithm is explained. Second, we show that two similarity measures (S_1 and S_2) and two inclusion indices (I_1 and I_2) between fuzzy sets (see Dubois and Prade, Fuzzy Sets and Systems: Theory and Applications, Academic Press, New York, 1980) produce the same DT classifier. The equivalence is proven by Showing that for every object submitted for classification, all four measures induce the same ordering on the set of class Labels (through DT fusion), thereby assigning the object to the same class.
机译:决策模板(DT)是一种用于分类器融合的技术,用于连续值的单个分类器输出。这里考虑的单个输出的总和为相同的值(例如统计分类器,得出该类的后验概率的一些估计值)。首先,说明DT融合算法。其次,我们表明模糊集之间的两个相似性度量(S_1和S_2)和两个包含指数(I_1和I_2)(请参见Dubois和Prade,模糊集和系统:理论与应用,学术出版社,纽约,1980年)产生了相同的DT分类器。通过显示证明对于提交分类的每个对象,所有这四个度量(通过DT融合)在类标签的集合上引起相同的排序,从而将对象分配给同一类,从而证明了等效性。

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