FairEM360: A Suite for Responsible Entity Matching

April 10, 2024 Β· Declared Dead Β· πŸ› Proceedings of the VLDB Endowment

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Authors Nima Shahbazi, Mahdi Erfanian, Abolfazl Asudeh, Fatemeh Nargesian, Divesh Srivastava arXiv ID 2404.07354 Category cs.DB: Databases Cross-listed cs.CY, cs.LG Citations 1 Venue Proceedings of the VLDB Endowment Last Checked 5 months ago
Abstract
Entity matching is one the earliest tasks that occur in the big data pipeline and is alarmingly exposed to unintentional biases that affect the quality of data. Identifying and mitigating the biases that exist in the data or are introduced by the matcher at this stage can contribute to promoting fairness in downstream tasks. This demonstration showcases FairEM360, a framework for 1) auditing the output of entity matchers across a wide range of fairness measures and paradigms, 2) providing potential explanations for the underlying reasons for unfairness, and 3) providing resolutions for the unfairness issues through an exploratory process with human-in-the-loop feedback, utilizing an ensemble of matchers. We aspire for FairEM360 to contribute to the prioritization of fairness as a key consideration in the evaluation of EM pipelines.
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