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Data processing of small samples based on grey distance information approach

机译:基于灰距离信息法的小样本数据处理

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摘要

Data processing of small samples is an important and valuable research problem in the electronic equipment test. Because it is difficult and complex to determine the probability distribution of small samples, it is difficult to use the traditional probability theory to process the samples and assess the degree of uncertainty. Using the grey relational theory and the norm theory, the grey distance information approach, which is based on the grey distance information quantity of a sample and the average grey distance information quantity of the samples, is proposed in this article. The definitions of the grey distance information quantity of a sample and the average grey distance information quantity of the samples, with their characteristics and algorithms, are introduced. The correlative problems, including the algorithm of estimated value, the standard deviation, and the acceptance and rejection criteria of the samples and estimated results, are also proposed. Moreover, the information whitening ratio is introduced to select the weight algorithm and to compare the different samples. Several examples are given to demonstrate the application of the proposed approach. The examples show that the proposed approach, which has no demand for the probability distribution of small samples, is feasible and effective.
机译:小样品的数据处理是电子设备测试中重要且有价值的研究问题。由于确定小样本的概率分布既困难又复杂,因此难以使用传统的概率论来处理样本并评估不确定度。本文提出了一种基于灰关联理论和范数理论的灰距离信息方法,该方法基于样本的灰距离信息量和样本的平均灰距离信息量。介绍了样本灰度距离信息量的定义和样本平均灰度距离信息量的定义,特征和算法。还提出了相关的问题,包括估计值的算法,标准偏差,样本和估计结果的接受和拒绝标准。此外,引入信息白化率以选择权重算法并比较不同样本。给出了几个例子来说明所提出方法的应用。实例表明,该方法不需要小样本的概率分布,是可行且有效的。

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