Hypothesis Testing
Hypothesis testing is the use of statistics to determine the probability that a given hypothesis is true. The usual process of hypothesis testing consists of four steps.
1. Formulate the null hypothesis
(commonly, that
the observations are the result of pure chance) and the alternative
hypothesis
(commonly, that the observations show
a real effect combined with a component of chance variation).
2. Identify a test statistic that can be used to assess the truth of the null hypothesis.
3. Compute the P-value, which is the probability that a test statistic at least as significant as the one observed would be obtained assuming
that the null hypothesis were true. The smaller
the
-value, the stronger the evidence against
the null hypothesis.
4. Compare the
-value to an acceptable significance value
(sometimes called an alpha
value). If
, that the observed effect
is statistically significant, the null hypothesis is ruled out, and the alternative
hypothesis is valid.
hypothesis testing
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