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Measure-transformed Gaussian quasi score test

机译:度量转换的高斯拟分数测试

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In this paper, we develop a robust generalization of the Gaussian quasi score test (GQST) for composite binary hypothesis testing. The proposed test, called measure-transformed GQST (MT-GQST), is based on a transformation applied to the probability distribution of the data. The considered transform is structured by a non-negative function, called MT-function, that weights the data points. By appropriate selection of the MT-function we show that, unlike the GQST, the proposed MT-GQST incorporates higher-order moments and can gain robustness to outliers. The MT-GQST is applied for testing the parameter of a non-linear model. Simulation example illustrates its advantages as compared to the standard GQST and other robust detectors.
机译:在本文中,我们为复合二元假设检验开发了高斯拟评分法(GQST)的强大概括。所提出的测试称为度量转换GQST(MT-GQST),它基于应用于数据概率分布的转换。所考虑的变换由称为MT函数的非负函数构成,该函数对数据点进行加权。由MT-功能的适当选择我们证明了,不像GQST,建议MT-GQST包含高阶动和能够获得稳健性的异常值。 MT-GQST用于测试非线性模型的参数。仿真示例说明了与标准GQST和其他鲁棒检测器相比的优势。

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