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Causal inference for social discrimination reasoning

Articolo
Data di Pubblicazione:
2020
Abstract:
The discovery of discriminatory bias in human or automated decision making is a task of increasing importance and difficulty, exacerbated by the pervasive use of machine learning and data mining. Currently, discrimination discovery largely relies upon correlation analysis of decisions records, disregarding the impact of confounding biases. We present a method for causal discrimination discovery based on propensity score analysis, a statistical tool for filtering out the effect of confounding variables. We introduce causal measures of discrimination which quantify the effect of group membership on the decisions, and highlight causal discrimination/favoritism patterns by learning regression trees over the novel measures. We validate our approach on two real world datasets. Our proposed framework for causal discrimination has the potential to enhance the transparency of machine learning with tools for detecting discriminatory bias both in the training data and in the learning algorithms.
Tipologia CRIS:
01.01 Articolo in rivista
Keywords:
Social discrimination; Fairness; Accountability and transparency; Propensity score; Causal analysis
Elenco autori:
Ruggieri, Salvatore; Pedreschi, Dino
Link alla scheda completa:
https://iris.cnr.it/handle/20.500.14243/379892
Link al Full Text:
https://iris.cnr.it//retrieve/handle/20.500.14243/379892/56582/prod_422748-doc_158542.pdf
Pubblicato in:
JOURNAL OF INTELLIGENT INFORMATION SYSTEMS
Journal
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URL

https://link.springer.com/article/10.1007/s10844-019-00580-x
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