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  2. p-value - Wikipedia

    en.wikipedia.org/wiki/P-value

    That allowed computed values of χ 2 to be compared against cutoffs and encouraged the use of p-values (especially 0.05, 0.02, and 0.01) as cutoffs, instead of computing and reporting p-values themselves. The same type of tables were then compiled in (Fisher & Yates 1938), which cemented the approach. [44]

  3. Levene's test - Wikipedia

    en.wikipedia.org/wiki/Levene's_test

    If the resulting p-value of Levene's test is less than some significance level (typically 0.05), the obtained differences in sample variances are unlikely to have occurred based on random sampling from a population with equal variances. Thus, the null hypothesis of equal variances is rejected and it is concluded that there is a difference ...

  4. q-value (statistics) - Wikipedia

    en.wikipedia.org/wiki/Q-value_(statistics)

    If we control the pFDR to 0.05 by considering all genes with a q-value of less than 0.05 to be differentially expressed, then we expect 5% of the positive results to be false positives (e.g. 900 true positives, 45 false positives, 100 false negatives, 8,955 true negatives). This strategy enables one to obtain relatively low numbers of both ...

  5. Statistical significance - Wikipedia

    en.wikipedia.org/wiki/Statistical_significance

    [15] [16] But if the p-value of an observed effect is less than (or equal to) the significance level, an investigator may conclude that the effect reflects the characteristics of the whole population, [1] thereby rejecting the null hypothesis. [17] This technique for testing the statistical significance of results was developed in the early ...

  6. Null hypothesis - Wikipedia

    en.wikipedia.org/wiki/Null_hypothesis

    Consider the following example. Given the test scores of two random samples, one of men and one of women, does one group score better than the other? A possible null hypothesis is that the mean male score is the same as the mean female score: H 0: μ 1 = μ 2. where H 0 = the null hypothesis, μ 1 = the mean of population 1, and μ 2 = the mean ...

  7. Minimal important difference - Wikipedia

    en.wikipedia.org/wiki/Minimal_important_difference

    The MID varies according to diseases and outcome instruments, but it does not depend on treatment methods. Therefore, two different treatments for a similar disease can be compared using the same MID if the outcome measurement instrument is the same.

  8. Effect size - Wikipedia

    en.wikipedia.org/wiki/Effect_size

    In statistics, an effect size is a value measuring the strength of the relationship between two variables in a population, or a sample-based estimate of that quantity. It can refer to the value of a statistic calculated from a sample of data, the value of one parameter for a hypothetical population, or to the equation that operationalizes how statistics or parameters lead to the effect size ...

  9. Quantile - Wikipedia

    en.wikipedia.org/wiki/Quantile

    When z ≥ 0, the value that is z standard deviations above the mean has a lower bound + (+), For example, the value that is z = 1 standard deviation above the mean is always greater than or equal to Q ( p = 0.5) , the median, and the value that is z = 2 standard deviations above the mean is always greater than or equal to Q ( p = 0.8) , the ...