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Adaptive Fourier tester for statistical estimation

机译:用于统计估计的自适应傅立叶测试仪

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Based on Takenaka-Malmquist (TM) system, a new nonparametric estimator for probability density function is proposed. The TM estimation method is completely different from the existent density estimation methods in that the estimator depends on an approximate system with poles in a complex plane. Compared with the classic Fourier estimator, the TM estimator will offer more flexibility and adaptivity for real data due to the poles and nonlinearity of the phase of TM system. We compare the TM estimator with kernel, wavelet, and spline estimators by simulations. It shows that the introduced TM estimator is a more promising method than the existing and commonly used methods. Copyright (c) 2016 John Wiley & Sons, Ltd.
机译:基于Takenaka-Malmquist(TM)系统,提出了一种新的概率密度函数非参数估计器。 TM估计方法与现有的密度估计方法完全不同,因为估计器依赖于极点在复杂平面中的近似系统。与传统的傅立叶估计器相比,由于TM系统相位的极点和非线性,TM估计器将为实际数据提供更多的灵活性和适应性。通过仿真,我们将TM估计量与核,小波和样条估计量进行了比较。结果表明,与现有的和常用的方法相比,引入的TM估计器是一种更有前途的方法。版权所有(c)2016 John Wiley&Sons,Ltd.

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