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P-Value and Statistical Significance
The p-value is the probability of observing data as extreme as or more extreme than what was actually observed, assuming the null hypothesis is true. Introduced by Ronald Fisher in 1925, it is the foundation of frequentist hypothesis testing. Statistical significance is declared when the p-value falls below a pre-specified threshold (alpha level, typically 0.05).
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P-Value and the Concept of Statistical Significance in Hypothesis Testing
Taksonomski zapis metode · process-pipeline / research-statistics
- Fisher, R. A. (1925). Statistical Methods for Research Workers. Oliver and Boyd. · URL
- Neyman, J., & Pearson, E. S. (1933). On the problem of the most efficient tests of statistical hypotheses. Philosophical Transactions of the Royal Society, 231, 289–337. · DOI 10.1098/rsta.1933.0009
- Wasserstein, R. L., & Lazar, N. A. (2016). The ASA Statement on p-Values: Context, Process, and Purpose. The American Statistician, 70(2), 129–133. · DOI 10.1080/00031305.2016.1154108
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