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Multi-performance Fusion of Classification Systems

机译:分类系统的多功能融合

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Given two legacy exploitation systems, whose performances are known, one might wish to determine if combining these together using some rule would yield a new exploitation system with improved performance. This is the fusion process. Often there are several performance objectives one would consider in this process. We investigate the fusion process based upon multiple performances. This is related to multi-objective optimization, but is different in some aspects. In this paper we pose a multi-performance problem for combining two classifications systems and derive the multi-performance fusion theory. A classification system with M possible output labels will have M(M-1) possible errors. The Receiver Operating Characteristic (ROC) manifold was created to quantify all of these errors. The assumption of independence is usually made to simply the mathematics of combining the individual systems into one system. Boolean rules do not exist for multiple symbols, thus, Boolean-like rules were created that would yield label fusion rules. An M-label system will have M! consistent rules. The formula for the resultant ROC manifold of the fused classification systems which incorporates the individual classification systems previously was derived. For the multi-performance problem we show how the set of permutations of the label set is used to generate all of the consistent rules and how the permutation matrix is incorporated into a single formula for the ROC manifold. Examples will be given that demonstrate how the solution to the multi-performance fusion problem relates to the solution of the single performance fusion problem.
机译:给定两个已知性能的遗留漏洞利用系统,一个人可能希望确定是否使用某种规则将它们组合在一起会产生性能改进的新漏洞利用系统。这是融合过程。通常在此过程中会考虑几个性能目标。我们基于多种性能研究融合过程。这与多目标优化有关,但在某些方面有所不同。在本文中,我们提出了将两个分类系统组合在一起的多功能问题,并推导了多功能融合理论。具有M个可能的输出标签的分类系统将具有M(M-1)个可能的错误。创建接收器工作特性(ROC)歧管以量化所有这些错误。独立性的假设通常是简单地将各个系统组合成一个系统的数学。对于多个符号不存在布尔规则,因此创建了类似布尔的规则,该规则将产生标签融合规则。一个M标签系统将具有M!一致的规则。得出了融合分类系统的最终ROC歧管的公式,该公式结合了先前的各个分类系统。对于多性能问题,我们显示了标签集的排列集如何用于生成所有一致规则,以及如何将排列矩阵合并到ROC流形的单个公式中。将给出示例,以说明对多功能融合问题的解决方案与对单一性能融合问题的解决方案之间的关系。

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