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  1. Authenticity in authorship: the Writer’s Integrity framework for verifying human-generated text.Sanad Aburass & Maha Abu Rumman - 2024 - Ethics and Information Technology 26 (3):1-12.
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  • AI-Related Risk: An Epistemological Approach.Giacomo Zanotti, Daniele Chiffi & Viola Schiaffonati - 2024 - Philosophy and Technology 37 (2):1-18.
    Risks connected with AI systems have become a recurrent topic in public and academic debates, and the European proposal for the AI Act explicitly adopts a risk-based tiered approach that associates different levels of regulation with different levels of risk. However, a comprehensive and general framework to think about AI-related risk is still lacking. In this work, we aim to provide an epistemological analysis of such risk building upon the existing literature on disaster risk analysis and reduction. We show how (...)
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  • AI content detection in the emerging information ecosystem: new obligations for media and tech companies.Alistair Knott, Dino Pedreschi, Toshiya Jitsuzumi, Susan Leavy, David Eyers, Tapabrata Chakraborti, Andrew Trotman, Sundar Sundareswaran, Ricardo Baeza-Yates, Przemyslaw Biecek, Adrian Weller, Paul D. Teal, Subhadip Basu, Mehmet Haklidir, Virginia Morini, Stuart Russell & Yoshua Bengio - 2024 - Ethics and Information Technology 26 (4):1-14.
    The world is about to be swamped by an unprecedented wave of AI-generated content. We need reliable ways of identifying such content, to supplement the many existing social institutions that enable trust between people and organisations and ensure social resilience. In this paper, we begin by highlighting an important new development: providers of AI content generators have new obligations to support the creation of reliable detectors for the content they generate. These new obligations arise mainly from the EU’s newly finalised (...)
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  • Mapping the Ethics of Generative AI: A Comprehensive Scoping Review.Thilo Hagendorff - 2024 - Minds and Machines 34 (4):1-27.
    The advent of generative artificial intelligence and the widespread adoption of it in society engendered intensive debates about its ethical implications and risks. These risks often differ from those associated with traditional discriminative machine learning. To synthesize the recent discourse and map its normative concepts, we conducted a scoping review on the ethics of generative artificial intelligence, including especially large language models and text-to-image models. Our analysis provides a taxonomy of 378 normative issues in 19 topic areas and ranks them (...)
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