规范算法管理:蓝图

IF 1.1 Q2 LAW
Jeremias Adams-Prassl, Halefom H. Abraha, Aislinn Kelly-Lyth, M. ‘. Silberman, Sangh Rakshita
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引用次数: 2

摘要

算法管理的希望和危险在文献中得到了越来越多的认可。监管机构应该如何应对传统雇主职能(从招聘到解雇)的全面自动化?本文确定了两个关键的监管缺口——隐私危害和信息不对称的加剧,以及人类能动性的丧失——并提出了一系列旨在解决这些新危害的政策选择。红线(禁止)、目的限制以及个人和集体信息权利旨在防止有害的侵入性数据做法;关于人类参与“循环中”(禁止全自动终止)、“循环后”(有权进行有意义的审查)、“循环前”(信息和咨询权)和“循环之上”(影响评估)的规定旨在恢复人类在算法管理系统的部署和治理中的能动性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Regulating algorithmic management: A blueprint
The promise—and perils—of algorithmic management are increasingly recognised in the literature. How should regulators respond to the automation of the full range of traditional employer functions, from hiring workers through to firing them? This article identifies two key regulatory gaps—an exacerbation of privacy harms and information asymmetries, and a loss of human agency—and sets out a series of policy options designed to address these novel harms. Redlines (prohibitions), purpose limitations, and individual as well as collective information rights are designed to protect against harmfully invasive data practices; provisions for human involvement ‘in the loop’ (banning fully automated terminations), ‘after the loop’ (a right to meaningful review), ‘before the loop’ (information and consultation rights) and ‘above the loop’ (impact assessments) aim to restore human agency in the deployment and governance of algorithmic management systems.
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来源期刊
CiteScore
1.60
自引率
28.60%
发文量
29
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