Bias does not equal bias : a socio-technical typology of bias in data-based algorithmic systems
Paola Lopez
This paper introduces a socio-technical typology of bias in data-driven machine learning and artificial intelligence systems. The typology is linked to the conceptualisations of legal anti-discrimination regulations, so that the concept of structural inequality-and, therefore, of undesirable bias-is defined accordingly. By analysing the controversial Austrian "AMS algorithm" as a case study as well as examples in the contexts of face detection, risk assessment and health care management, this paper defines the following three types of bias: firstly, purely technical bias as a systematic deviation of the datafied version of a phenomenon from reality; secondly, socio-technical bias as a systematic deviation due to structural inequalities, which must be strictly distinguished from, thirdly, societal bias, which depicts-correctly-the structural inequalities that prevail in society. This paper argues that a clear distinction must be made between different concepts of bias in such systems in order to analytically assess these systems and, subsequently, inform political action.
Year of publication: |
2021
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Authors: | Lopez, Paola |
Published in: |
Internet policy review : journal on internet regulation. - Berlin : [Verlag nicht ermittelbar], ISSN 2197-6775, ZDB-ID 2733587-2. - Vol. 10.2021, 4, p. 1-29
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Subject: | Artificial intelligence | Machine learning | Bias | Künstliche Intelligenz | Systematischer Fehler |
Saved in:
freely available
Type of publication: | Article |
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Type of publication (narrower categories): | Aufsatz in Zeitschrift ; Article in journal |
Language: | English |
Other identifiers: | 10.14763/2021.4.1598 [DOI] hdl:10419/250397 [Handle] |
Source: | ECONIS - Online Catalogue of the ZBW |
Persistent link: https://www.econbiz.de/10012873212
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