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The Strong Consistency of the Conditional Probability of Error in Discrimination Based on Kernel Stereographic Projection Density Estimator

机译:基于核立体投影密度估计的判别条件误差概率的强一致性

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摘要

Let (X,Y), (X_1,Y_1),…,(X_n,Y_m) be R~d×{1,…,M} -valued i.i.d. random vectors, Z_n={(X_1,Y_1),…(X_n,Y_ri)}.(X,Y) is distribution free, to discriminate Y based on Z_n and X belongs to nonparametric discrimination. Based on kernel stereographic projection density estimator (KSPDE), a new nonparametric discriminate rule is constructed. Under some weak conditions(see theorem 1), the exponential convergence rate and the strong consistency of the conditional probability of error in discrimination are obtained.
机译:令(X,Y),(X_1,Y_1),...,(X_n,Y_m)为R〜d×{1,...,M}值i.i.d.随机向量Z_n = {(X_1,Y_1),...(X_n,Y_ri)}。(X,Y)是无分布的,基于Z_n来区分Y,X属于非参数判别。基于核立体投影密度估计器(KSPDE),构造了一个新的非参数判别规则。在某些弱条件下(见定理1),获得了判别误差的指数收敛速度和条件错误概率的强一致性。

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