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1.
Stat Probab Lett ; 119: 317-325, 2016 Dec.
Artigo em Inglês | MEDLINE | ID: mdl-28392612

RESUMO

Consider distributional limit of the Pearson chi-square statistic when the number of classes mn increases with the sample size n and [Formula: see text]. Under mild moment conditions, the limit is Gaussian for λ = ∞, Poisson for finite λ > 0, and degenerate for λ = 0.

2.
Comb Probab Comput ; 22(2): 213-240, 2013 Mar.
Artigo em Inglês | MEDLINE | ID: mdl-24591773

RESUMO

In the paper we develop an approach to asymptotic normality through factorial cumulants. Factorial cumulants arise in the same manner from factorial moments as do (ordinary) cumulants from (ordinary) moments. Another tool we exploit is a new identity for 'moments' of partitions of numbers. The general limiting result is then used to (re-)derive asymptotic normality for several models including classical discrete distributions, occupancy problems in some generalized allocation schemes and two models related to negative multinomial distribution.

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