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Last Published January 21, 2021 03:54 PM December 11, 2023 04:02 PM
Public Data URL https://osf.io/2eq43/
Is there a restricted access data set available on request? No
Program Files Yes
Program Files URL https://osf.io/2eq43/
Is data available for public use? Yes
Keyword(s) Gender, Labor Gender, Labor
Building on Existing Work No
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Papers

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Paper Abstract Previous research has shown that people care less about men than about women who are left behind. We show that this finding extends to the domain of labor market discrimination: In identical scenarios, people judge discrimination against women more morally bad than discrimination against men. This result holds in a representative sample of the US population and in a larger but not representative sample of Amazon Mechanical Turk (Mturk) respondents. We test if this gender gap is driven by statistical fairness discrimination, a process in which people use the gender of the victim to draw inferences about other characteristics which matter for their fairness judgments. We test this explanation with a survey experiment in which we explicitly hold information about the victim of discrimination constant. Our results provide only mixed support for the statistical fairness discrimination explanation. In our representative sample, we see no meaningful or significant effect of the information treatments. By contrast, in our Mturk sample, we see that providing additional information partly reduces the effect of the victim’s gender on judgment of the discriminator. While people may engage in statistical fairness discrimination, this process is unlikely to be an exhaustive explanation for why discrimination against women is judged as worse
Paper Citation Feess, Eberhard, Jan Feld, and Shakked Noy. "People Judge Discrimination Against Women More Harshly Than Discrimination Against Men–Does Statistical Fairness Discrimination Explain Why?." Frontiers in psychology 12 (2021): 675776.
Paper URL https://doi.org/10.3389/fpsyg.2021.675776
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