Adoption of Explainable Natural Language Processing: Perspectives from Industry and Academia on Practices and Challenges

August 13, 2025 ยท Declared Dead ยท ๐Ÿ› Proceedings of the AAAI/ACM Conference on AI, Ethics, and Society

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Authors Mahdi Dhaini, Tobias Mรผller, Roksoliana Rabets, Gjergji Kasneci arXiv ID 2508.09786 Category cs.CL: Computation & Language Cross-listed cs.AI, cs.HC Citations 0 Venue Proceedings of the AAAI/ACM Conference on AI, Ethics, and Society Last Checked 5 months ago
Abstract
The field of explainable natural language processing (NLP) has grown rapidly in recent years. The growing opacity of complex models calls for transparency and explanations of their decisions, which is crucial to understand their reasoning and facilitate deployment, especially in high-stakes environments. Despite increasing attention given to explainable NLP, practitioners' perspectives regarding its practical adoption and effectiveness remain underexplored. This paper addresses this research gap by investigating practitioners' experiences with explainability methods, specifically focusing on their motivations for adopting such methods, the techniques employed, satisfaction levels, and the practical challenges encountered in real-world NLP applications. Through a qualitative interview-based study with industry practitioners and complementary interviews with academic researchers, we systematically analyze and compare their perspectives. Our findings reveal conceptual gaps, low satisfaction with current explainability methods, and highlight evaluation challenges. Our findings emphasize the need for clear definitions and user-centric frameworks for better adoption of explainable NLP in practice.
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