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Confidence Combination Methods in Multi-expert Systems

机译:多专家系统中的信心组合方法

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In the proposed paper, we investigate the combination of the multi-expert system in which each expert outputs a class label as well as a corresponding confidence measure. We create a special confidence measurement which is common for all experts and use it as a basis for the combination. We develop three combination methods. The first method is theoretically optimal but requires very large representative training data and storage memory for look-up table. It is actually impractical. The second method is suboptimal and reduces greatly the required training data and memory space. The last method is a simplified version of the second and needs the least training data and memory space. All three methods demand no mutual independence of the experts, thus should be useful in many applications.
机译:在拟议的论文中,我们调查多专家系统的组合,其中每个专家输出类标签以及相应的置信度量。我们创造了一种特殊的置信度量,对所有专家都很常见,并将其作为组合的基础。我们开发三种组合方法。第一种方法是理论上最佳的,但需要非常大的代表性训练数据和用于查找表的存储存储器。它实际上是不切实际的。第二种方法是次优,大大减少了所需的训练数据和内存空间。最后一个方法是第二个的简化版本,需要最少的培训数据和内存空间。所有三种方法都不需要专家的相互独立性,因此应该在许多应用中有用。

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