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February 4, 2020Proceedings of the AAAI/ACM Conference on AI Ethics and Society292 citationsOpen Access

Saving Face

IRInioluwa Deborah RajiTGTimnit GebruMMMargaret Mitchell

Key Points

  • The study aims to identify ethical concerns in the auditing of facial recognition technology.
  • Analyzed commercial facial processing systems for ethical issues.
  • Identified five key ethical concerns related to data sensitivity and auditing practices.
  • Provided tangible examples illustrating potential harms during audits.
  • Outlined five ethical concerns that could amplify existing harms in biometric systems.
  • Highlighted the importance of auditor awareness in avoiding additional biases.
  • Reflected on the implications of these concerns for algorithmic auditing practices.

Abstract

Although essential to revealing biased performance, well intentioned attempts at algorithmic auditing can have effects that may harm the very populations these measures are meant to protect. This concern is even more salient while auditing biometric systems such as facial recognition, where the data is sensitive and the technology is often used in ethically questionable manners. We demonstrate a set of fiveethical concerns in the particular case of auditing commercial facial processing technology, highlighting additional design considerations and ethical tensions the auditor needs to be aware of so as not exacerbate or complement the harms propagated by the audited system. We go further to provide tangible illustrations of these concerns, and conclude by reflecting on what these concerns mean for the role of the algorithmic audit and the fundamental product limitations they reveal.

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Cite This Study

Raji et al. (2020) studied this question.

synapsesocial.com/papers/6a08db9a73760a4edcd604b1https://doi.org/10.1145/3375627.3375820
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