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GROUP CONTINGENCY TEST FOR TWO OR SEVERAL INDEPENDENT SAMPLES
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作者 hexin zhang xiangzhong fang xiaojing ma 《Journal of Systems Science & Complexity》 SCIE EI CSCD 2011年第6期1183-1192,共10页
This paper proposes a new and distribution-free test called "Group Contingency" test (GC, for short) for testing two or several independent samples. Compared with traditional nonparametric tests, GC test tends to ... This paper proposes a new and distribution-free test called "Group Contingency" test (GC, for short) for testing two or several independent samples. Compared with traditional nonparametric tests, GC test tends to explore more information based on samples, and it's location-, scale-, and shapesensitive. The authors conduct some simulation studies comparing GC test with Wilcoxon rank sum test (W), Kolmogorov-Smirnov test (KS) and Wald-Wolfowitz runs test (WW) for two sample case, and with Kruskal-Wallis (KW) for testing several samples. Simulation results reveal that GC test usually outperforms other methods. 展开更多
关键词 Clustering group contingency test nonparametric test
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