Human-Centered Design to Address Biases in Artificial Intelligence (Preprint)

Author:

Chen YouORCID,Clayton Ellen WrightORCID,Novak Laurie LovettORCID,Anders ShiloORCID,Malin BradleyORCID

Abstract

UNSTRUCTURED

The potential of artificial intelligence (AI) to reduce health care disparities and inequities is recognized, but it can also exacerbate these issues if not implemented in an equitable manner. This perspective identifies potential biases in each stage of the AI life cycle, including data collection, annotation, machine learning model development, evaluation, deployment, operationalization, monitoring, and feedback integration. To mitigate these biases, we suggest involving a diverse group of stakeholders, using human-centered AI principles. Human-centered AI can help ensure that AI systems are designed and used in a way that benefits patients and society, which can reduce health disparities and inequities. By recognizing and addressing biases at each stage of the AI life cycle, AI can achieve its potential in health care.

Publisher

JMIR Publications Inc.

Cited by 1 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. Look Before You Leap: Insights On The Implementation Of Ai Across Healthcare Settings;Proceedings of the Human Factors and Ergonomics Society Annual Meeting;2023-09

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