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Combining Prioritized Decisions in Classification

机译:合并分类中的优先决策

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摘要

In this paper we present an alternative evidential method of combining prioritized decisions, in order to arrive at a "consensus", or aggregate, decision. Previous studies have suggested that, in some classification domains, the better performance can be achieved through combining the first and second decisions from each evidence source. However, it is easy to illustrate the fact that going further down a decision list, to give longer preferred decisions, can provide the alternative to the method of combining only the first one and second decisions. Our objective here is to examine the theoretical aspect of an alternative method in terms of quartet - how extending a decision list of any length by one extra preferred decision affects classification results. We also present the experimental results to demonstrate the effectiveness of our alternative method.
机译:在本文中,我们提出了一种结合优先决策的替代证据方法,以得出“共识”或合计决策。先前的研究表明,在某些分类领域中,可以通过组合每个证据来源的第一和第二个决策来实现更好的性能。但是,很容易说明以下事实:在决策列表中进一步向下给出较长的首选决策,可以为仅组合第一个和第二个决策的方法提供替代方法。我们的目标是从四重奏角度研究替代方法的理论方面-将任何长度的决策列表扩展一个额外的首选决策如何影响分类结果。我们还提出了实验结果,以证明我们替代方法的有效性。

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