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Nonparametric tests for multiple regression under progressive censoring
Authors:Hiranmay Majumdar  Pranab Kumar Sen
Institution:University of North Carolina, Chapel Hill, USA
Abstract:For continuous observations from time-sequential studies, suitable Cramér-von Mises and Kolmogorov-Smirnov types of (nonparametric) statistics (based on linear rank statistics) for testing hypotheses on some multiple-regression models are proposed and studied. The asymptotic theory of these tests is provided for both the null and (local) alternative hypotheses situations and is based on the weak convergence of suitable rank order processes (on the D0, 1] space) to certain functions of Brownian motions. Bahadur efficiency results are also presented. Empirical values of the percentile points of the null distributions of the proposed test statistics, obtained through simulation studies, are also provided.
Keywords:60F05  62G10  62L99  Bahadur-efficiency  clinical trials  Cramér-von Mises statistics  Kolmogorov-Smirnov statistics  life testing  linear rank statistics  local (contiguous) alternatives  multiple regression  progressive censoring schemes  rank tests  time-sequential procedures  weak convergence  Wiener processes
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