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A new weighted classifier combination method with two-step evidential discounting operations

机译:具有两步证据贴现操作的加权分类器组合新方法

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In target recognition, multi-source fusion, such as multiple radar fusion has to be considered to achieve accurate identification. In classification fusion problem, the classifiers are often considered with different weights. DS rule is used for optimizing the classifier weights. The evidence discounting operation with classifier weights can improve the classifier reliability. However, the classification results of different patterns by a common classifier may also have different reliability. Thus, evidence distance and conflict are used to determine the pattern weights. Some real data sets are used to test the proposed method, and results show that the proposed method can efficiently improve the classification accuracy.
机译:在目标识别中,必须考虑多源融合,例如多雷达融合,以实现准确识别。在分类融合问题中,分类器通常被认为具有不同的权重。 DS规则用于优化分类器权重。利用分类器权重进行证据贴现操作可以提高分类器的可靠性。但是,通用分类器对不同模式进行分类的结果也可能具有不同的可靠性。因此,证据距离和冲突可用于确定模式权重。使用一些真实的数据集来测试该方法,结果表明该方法可以有效地提高分类精度。

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