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Full-Text Articles in Law
The Invisible Web At Work: Artificial Intelligence And Electronic Surveillance In The Workplace, Richard A. Bales, Katherine Vw Stone
The Invisible Web At Work: Artificial Intelligence And Electronic Surveillance In The Workplace, Richard A. Bales, Katherine Vw Stone
AI-DR Collection
Employers and others who hire or engage workers to perform services use a dizzying array of electronic mechanisms to make personnel decisions about hiring, worker evaluation, compensation, discipline, and retention. These electronic mechanisms include electronic trackers, surveillance cameras, metabolism monitors, wearable biological measuring devices, and implantable technology. These tools enable employers to record their workers’ every movement, listen in on their conversations, measure minute aspects of performance, and detect oppositional organizing activities. The data collected is transformed by means of artificial intelligence (A-I) algorithms into a permanent electronic resume that can identify and predict an individual’s performance as well as …
The Paradox Of Automation As Anti-Bias Intervention, Ifeoma Ajunwa
The Paradox Of Automation As Anti-Bias Intervention, Ifeoma Ajunwa
AI-DR Collection
A received wisdom is that automated decision-making serves as an anti-bias intervention. The conceit is that removing humans from the decision-making process will also eliminate human bias. The paradox, however, is that in some instances, automated decision-making has served to replicate and amplify bias. With a case study of the algorithmic capture of hiring as heuristic device, this Article provides a taxonomy of problematic features associated with algorithmic decision-making as anti-bias intervention and argues that those features are at odds with the fundamental principle of equal opportunity in employment. To examine these problematic features within the context of algorithmic hiring …
Is Algorithmic Affirmative Action Legal?, Jason R. Bent
Is Algorithmic Affirmative Action Legal?, Jason R. Bent
AI-DR Collection
This Article is the first to comprehensively explore whether algorithmic affirmative action is lawful. It concludes that both statutory and constitutional antidiscrimination law leave room for race-aware affirmative action in the design of fair algorithms. Along the way, the Article recommends some clarifications of current doctrine and proposes the pursuit of formally race-neutral methods to achieve the admittedly race-conscious goals of algorithmic affirmative action.
The Article proceeds as follows. Part I introduces algorithmic affirmative action. It begins with a brief review of the bias problem in machine learning and then identifies multiple design options for algorithmic fairness. These designs are …