statsmodels.stats.weightstats.CompareMeans.ttest_ind¶
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CompareMeans.ttest_ind(alternative='two-sided', usevar='pooled', value=0)[source]¶ ttest for the null hypothesis of identical means
this should also be the same as onewaygls, except for ddof differences
Parameters: - x2 (x1,) – two independent samples, see notes for 2-D case
 - alternative (string) – The alternative hypothesis, H1, has to be one of the following ‘two-sided’: H1: difference in means not equal to value (default) ‘larger’ : H1: difference in means larger than value ‘smaller’ : H1: difference in means smaller than value
 - usevar (string, 'pooled' or 'unequal') – If 
pooled, then the standard deviation of the samples is assumed to be the same. Ifunequal, then Welsh ttest with Satterthwait degrees of freedom is used - value (float) – difference between the means under the Null hypothesis.
 
Returns: - tstat (float) – test statisic
 - pvalue (float) – pvalue of the t-test
 - df (int or float) – degrees of freedom used in the t-test
 
Notes
The result is independent of the user specified ddof.
