Failures of Fairness in Automation Require a Deeper Understanding of Human-ML Augmentation

类型学 计算机科学 自动化 知识管理 风险分析(工程) 管理科学 数据科学 社会学 业务 工程类 人类学 机械工程
作者
Mike Horia Teodorescu,Lily Morse,Yazeed Awwad,Gerald C. Kane
出处
期刊:Management Information Systems Quarterly [MIS Quarterly]
卷期号:45 (3): 1483-1500 被引量:94
标识
DOI:10.25300/misq/2021/16535
摘要

Machine learning (ML) tools reduce the costs of performing repetitive, time-consuming tasks yet run the risk of introducing systematic unfairness into organizational processes. Automated approaches to achieving fair- ness often fail in complex situations, leading some researchers to suggest that human augmentation of ML tools is necessary. However, our current understanding of human–ML augmentation remains limited. In this paper, we argue that the Information Systems (IS) discipline needs a more sophisticated view of and research into human–ML augmentation. We introduce a typology of augmentation for fairness consisting of four quadrants: reactive oversight, proactive oversight, informed reliance, and supervised reliance. We identify significant intersections with previous IS research and distinct managerial approaches to fairness for each quadrant. Several potential research questions emerge from fundamental differences between ML tools trained on data and traditional IS built with code. IS researchers may discover that the differences of ML tools undermine some of the fundamental assumptions upon which classic IS theories and concepts rest. ML may require massive rethinking of significant portions of the corpus of IS research in light of these differences, representing an exciting frontier for research into human–ML augmentation in the years ahead that IS researchers should embrace.
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