In both cases, the consequences can be severe, and the public’s trust in science can be damaged. In psychology research, p-hacking can lead to false claims about the efficacy of a particular therapy or treatment. For example, in medical research, p-hacking can lead to the approval of drugs or treatments that are ineffective or even harmful. When researchers manipulate data to obtain statistically significant results, they may draw incorrect conclusions about the relationship between variables. P-hacking is a problem because it can lead to false conclusions. By selectively analyzing data in this way, researchers can manipulate the p-value to make it appear statistically significant, even when the effect is not real. Researchers may also use other tactics, such as removing outliers, changing the dependent variable, or adjusting the sample size to obtain the desired results. P-hacking involves testing multiple hypotheses and selecting only those with significant results, while ignoring those that are not significant.
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