XABPs: Towards eXplainable Autonomous Business Processes

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Authors Peter Fettke, Fabiana Fournier, Lior Limonad, Andreas Metzger, Stefanie Rinderle-Ma, Barbara Weber arXiv ID 2507.23269 Category cs.SE: Software Engineering Cross-listed cs.AI, cs.MA Citations 1 Venue PMAI Last Checked 5 months ago
Abstract
Autonomous business processes (ABPs), i.e., self-executing workflows leveraging AI/ML, have the potential to improve operational efficiency, reduce errors, lower costs, improve response times, and free human workers for more strategic and creative work. However, ABPs may raise specific concerns including decreased stakeholder trust, difficulties in debugging, hindered accountability, risk of bias, and issues with regulatory compliance. We argue for eXplainable ABPs (XABPs) to address these concerns by enabling systems to articulate their rationale. The paper outlines a systematic approach to XABPs, characterizing their forms, structuring explainability, and identifying key BPM research challenges towards XABPs.
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