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Circular Chain Classifiers

机译:圆链分类器

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摘要

Chain Classifiers (CC) are an alternative for multi-label classification that is efficient and provides, in general, good results. However, it is not clear how to define the order of the chain. Different orders tend to produce different outcomes. We propose an extension to chain classifiers called “Circular Chain Classifiers" (CCC), in which the propagation of the classes of the previous binary classifiers is done iteratively in a circular way. After the first cycle, the predictions from the base classifiers are entered as additional attributes to the first one in the chain. This process continues for all the classifiers in the chain, and it is repeated for a prefixed number of cycles or until convergence. Using two datasets, we empirically established that CCC: (i) converges in few iterations (in general, 3 or 4), (ii) the initial order of the chain does not have a significant impact on the results. CCC performance was also compared against binary relevance and chain classifiers producing statistically superior results. The main contribution of CCC is its independence from the preestablished order of the chain, outperforming CC.
机译:链式分类器(CC)是多标签分类的替代方法,可有效且通常提供良好的结果。但是,尚不清楚如何定义链的顺序。不同的命令往往会产生不同的结果。我们提出了对链分类器的扩展,称为“循环链分类器”(Circular Chain Classifiers,CCC),在该循环中,以前的二进制分类器的类以循环方式迭代地传播,在第一个循环之后,输入了基础分类器的预测作为链中第一个分类器的附加属性。此过程将对链中的所有分类器继续进行,并重复进行一定数量的循环或直到收敛为止。根据两个数据集,我们凭经验确定了CCC:(i)收敛在几次迭代中(通常为3或4),(ii)链的初始顺序对结果没有显着影响;还比较了CCC性能与二元相关性和链分类器产生的统计上更好的结果。 CCC的优势在于它不受链条预定顺序的影响,胜过CC。

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