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Advanced Hypothesis Testing Flashcards

7 cards from real Certified Six Sigma Black Belt Exam practice questions. Tap to flip, then mark Knew It or Still Learning — missed cards come back until you master them.

Read the first 7 Advanced Hypothesis Testing flashcards as text
  1. A Six Sigma team wants to compare the variances of two independent populations. Which test is most appropriate?

    Answer: F-test (Snedecor's F)

    The F-test (Snedecor's F) is the classical test for comparing two population variances using the ratio of sample variances.

  2. When the p-value equals 0.049 and alpha is 0.05, a Black Belt should:

    Answer: Reject H₀ and consider practical significance before acting

    A p-value below alpha leads to rejecting H₀, but statistical significance must always be weighed against practical/economic significance.

  3. Which assumption is NOT required for a standard two-sample t-test?

    Answer: The sample means follow a chi-square distribution

    Sample means follow a t-distribution (not chi-square) under normality assumptions; chi-square applies to variance tests.

  4. A Kruskal-Wallis test is the nonparametric alternative to which parametric test?

    Answer: One-way ANOVA

    The Kruskal-Wallis test compares medians across three or more independent groups, serving as the nonparametric equivalent of one-way ANOVA.

  5. In hypothesis testing, the power of a test is defined as:

    Answer: 1 minus the probability of a Type II error

    Power = 1 − β, where β is the probability of a Type II error (failing to reject a false H₀).

  6. A Black Belt uses a one-tailed test instead of a two-tailed test. Compared to two-tailed at the same alpha, the one-tailed test:

    Answer: Has greater power to detect effects in the hypothesized direction

    By concentrating all of alpha in one tail, a one-tailed test has greater power to detect effects in the predicted direction.

  7. Which scenario correctly describes a Type I error in a manufacturing hypothesis test?

    Answer: Concluding a process is out of control when it actually is in control

    A Type I error (false positive) occurs when H₀ is true but is incorrectly rejected — concluding a problem exists when there is none.