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Prediction Based on the Solution of the Set of Classification Problems of Supervised Learning and Degrees of Membership

机译:基于监督学习和成员学位的分类问题解决方案的预测

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摘要

It is proposed to use the degrees of membership of objects to each class in the process of recognition in the linear corrector model to solve the problem of restoring dependences from precedent samples. Two models of the algorithm for calculating estimates are used as classifiers. The work of the proposed model is compared with the original method and with the well-known data analysis methods. The dependence of the work of the linear corrector on its parameters is studied.
机译:建议在线校正器模型中识别过程中对象的成员资格到每个类,以解决从先例样本恢复依赖性的问题。 计算估计算法的两个模型用作分类器。 将所提出的模型的工作与原始方法和众所周知的数据分析方法进行比较。 研究了线性校正器的工作对其参数的依赖性。

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