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  1.  45
    Applying a principle of explicability to AI research in Africa: should we do it?Mary Carman & Benjamin Rosman - 2020 - Ethics and Information Technology 23 (2):107-117.
    Developing and implementing artificial intelligence (AI) systems in an ethical manner faces several challenges specific to the kind of technology at hand, including ensuring that decision-making systems making use of machine learning are just, fair, and intelligible, and are aligned with our human values. Given that values vary across cultures, an additional ethical challenge is to ensure that these AI systems are not developed according to some unquestioned but questionable assumption of universal norms but are in fact compatible with the (...)
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  2.  8
    Applying a Principle of Explicability to AI Research in Africa: Should We Do It?Mary Carman & Benjamin Rosman - 2023 - In Aribiah David Attoe, Segun Samuel Temitope, Victor Nweke, John Umezurike & Jonathan Okeke Chimakonam (eds.), Conversations on African Philosophy of Mind, Consciousness and Artificial Intelligence. Springer Verlag. pp. 183-201.
    Developing and implementing artificial intelligence (AI) systems in an ethical manner faces several challenges specific to the kind of technology at hand, including ensuring that decision-making systems making use of machine learning are just, fair, and intelligible, and are aligned with our human values. Given that values vary across cultures, an additional ethical challenge is to ensure that these AI systems are not developed according to some unquestioned but questionable assumption of universal norms but are in fact compatible with the (...)
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    Transferable dynamics models for efficient object-oriented reinforcement learning.Ofir Marom & Benjamin Rosman - 2024 - Artificial Intelligence 329 (C):104079.
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    Fairness and accountability of AI in disaster risk management: Opportunities and challenges.Caroline Gevaert, Mary Carman, Benjamin Rosman, Yola Georgiadou & Robert Soden - 2021 - Patterns 11 (2).
    Artificial Intelligence (AI) is increasingly being used in disaster risk management applications to predict the effect of upcoming disasters, plan for mitigation strategies, and determine who needs how much aid after a disaster strikes. The media is filled with unintended ethical concerns of AI algorithms, such as image recognition algorithms not recognizing persons of color or racist algorithmic predictions of whether offenders will recidivate. We know such unintended ethical consequences must play a role in DRM as well, yet there is (...)
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