Results for 'high level expert group on artificial intelligence'

974 found
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  1.  61
    Actionable Principles for Artificial Intelligence Policy: Three Pathways.Charlotte Stix - 2021 - Science and Engineering Ethics 27 (1):1-17.
    In the development of governmental policy for artificial intelligence that is informed by ethics, one avenue currently pursued is that of drawing on “AI Ethics Principles”. However, these AI Ethics Principles often fail to be actioned in governmental policy. This paper proposes a novel framework for the development of ‘Actionable Principles for AI’. The approach acknowledges the relevance of AI Ethics Principles and homes in on methodological elements to increase their practical implementability in policy processes. As a case (...)
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  2. In AI We Trust: Ethics, Artificial Intelligence, and Reliability.Mark Ryan - 2020 - Science and Engineering Ethics 26 (5):2749-2767.
    One of the main difficulties in assessing artificial intelligence (AI) is the tendency for people to anthropomorphise it. This becomes particularly problematic when we attach human moral activities to AI. For example, the European Commission’s High-level Expert Group on AI (HLEG) have adopted the position that we should establish a relationship of trust with AI and should cultivate trustworthy AI (HLEG AI Ethics guidelines for trustworthy AI, 2019, p. 35). Trust is one of the (...)
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  3. (1 other version)Future progress in artificial intelligence: A survey of expert opinion.Vincent C. Müller & Nick Bostrom - 2016 - In Vincent C. Müller (ed.), Fundamental Issues of Artificial Intelligence. Cham: Springer. pp. 553-571.
    There is, in some quarters, concern about highlevel machine intelligence and superintelligent AI coming up in a few decades, bringing with it significant risks for humanity. In other quarters, these issues are ignored or considered science fiction. We wanted to clarify what the distribution of opinions actually is, what probability the best experts currently assign to highlevel machine intelligence coming up within a particular time–frame, which risks they see with that development, and how fast (...)
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  4. Embedding Values in Artificial Intelligence (AI) Systems.Ibo van de Poel - 2020 - Minds and Machines 30 (3):385-409.
    Organizations such as the EU High-Level Expert Group on AI and the IEEE have recently formulated ethical principles and (moral) values that should be adhered to in the design and deployment of artificial intelligence (AI). These include respect for autonomy, non-maleficence, fairness, transparency, explainability, and accountability. But how can we ensure and verify that an AI system actually respects these values? To help answer this question, I propose an account for determining when an AI (...)
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  5.  41
    Embedding artificial intelligence in society: looking beyond the EU AI master plan using the culture cycle.Simone Borsci, Ville V. Lehtola, Francesco Nex, Michael Ying Yang, Ellen-Wien Augustijn, Leila Bagheriye, Christoph Brune, Ourania Kounadi, Jamy Li, Joao Moreira, Joanne Van Der Nagel, Bernard Veldkamp, Duc V. Le, Mingshu Wang, Fons Wijnhoven, Jelmer M. Wolterink & Raul Zurita-Milla - forthcoming - AI and Society:1-20.
    The European Union Commission’s whitepaper on Artificial Intelligence proposes shaping the emerging AI market so that it better reflects common European values. It is a master plan that builds upon the EU AI High-Level Expert Group guidelines. This article reviews the masterplan, from a culture cycle perspective, to reflect on its potential clashes with current societal, technical, and methodological constraints. We identify two main obstacles in the implementation of this plan: the lack of a (...)
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  6. Future progress in artificial intelligence: A poll among experts.Vincent C. Müller & Nick Bostrom - 2014 - AI Matters 1 (1):9-11.
    [This is the short version of: Müller, Vincent C. and Bostrom, Nick (forthcoming 2016), ‘Future progress in artificial intelligence: A survey of expert opinion’, in Vincent C. Müller (ed.), Fundamental Issues of Artificial Intelligence (Synthese Library 377; Berlin: Springer).] - - - In some quarters, there is intense concern about highlevel machine intelligence and superintelligent AI coming up in a few dec- ades, bringing with it significant risks for human- ity; in other (...)
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  7.  66
    A Leap of Faith: Is There a Formula for “Trustworthy” AI?Matthias Braun, Hannah Bleher & Patrik Hummel - 2021 - Hastings Center Report 51 (3):17-22.
    Trust is one of the big buzzwords in debates about the shaping of society, democracy, and emerging technologies. For example, one prominent idea put forward by the HighLevel Expert Group on Artificial Intelligence appointed by the European Commission is that artificial intelligence should be trustworthy. In this essay, we explore the notion of trust and argue that both proponents and critics of trustworthy AI have flawed pictures of the nature of trust. We (...)
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  8. Mapping the Stony Road toward Trustworthy AI: Expectations, Problems, Conundrums.Gernot Rieder, Judith Simon & Pak-Hang Wong - 2021 - In Marcello Pelillo & Teresa Scantamburlo (eds.), Machines We Trust: Perspectives on Dependable Ai. MIT Press.
    The notion of trustworthy AI has been proposed in response to mounting public criticism of AI systems, in particular with regard to the proliferation of such systems into ever more sensitive areas of human life without proper checks and balances. In Europe, the High-Level Expert Group on Artificial Intelligence has recently presented its Ethics Guidelines for Trustworthy AI. To some, the guidelines are an important step for the governance of AI. To others, the guidelines (...)
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  9.  18
    Ética digital discursiva: de la explicabilidad a la participación.Domingo García Marzá - 2023 - Daimon: Revista Internacional de Filosofía 90:99-114.
    This article is intended to present a proposal for dialogic digital ethics on a critical reading of the European Commission's independent high-level expert group’s document Ethics Guidelines for Trustworthy AI (2019). These would be digital ethics with a normative horizon for action and criteria for justice based on dialogue and possible agreement between all agents involved and affected by the digital reality. The aim is to show that the participation of all parties involved is not merely (...)
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  10.  44
    An exploration of the impact of artificial intelligence (AI) and automation for communication professionals.Eduardo Alejandro López Jiménez & Tania Ouariachi - 2021 - Journal of Information, Communication and Ethics in Society (2):249-267.
    Purpose Artificial intelligence and automation are currently changing human life with a great implication in the communication field. This research focusses on understanding the current and growing impact of AI and automation in the role of communication professionals to identify what skills and training are needed to face its impacts leading to a recommendation. Design/methodology/approach The research involves methodological triangulation, analysing and comparing data gathered from consulting with experts using the Delphi method, focus group with communication students, (...)
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  11.  38
    Can robots be trustworthy?Ines Schröder, Oliver Müller, Helena Scholl, Shelly Levy-Tzedek & Philipp Kellmeyer - 2023 - Ethik in der Medizin 35 (2):221-246.
    Definition of the problem This article critically addresses the conceptualization of trust in the ethical discussion on artificial intelligence (AI) in the specific context of social robots in care. First, we attempt to define in which respect we can speak of ‘social’ robots and how their ‘social affordances’ affect the human propensity to trust in human–robot interaction. Against this background, we examine the use of the concept of ‘trust’ and ‘trustworthiness’ with respect to the guidelines and recommendations of (...)
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  12.  84
    Trust and ethics in AI.Hyesun Choung, Prabu David & Arun Ross - 2023 - AI and Society 38 (2):733-745.
    With the growing influence of artificial intelligence (AI) in our lives, the ethical implications of AI have received attention from various communities. Building on previous work on trust in people and technology, we advance a multidimensional, multilevel conceptualization of trust in AI and examine the relationship between trust and ethics using the data from a survey of a national sample in the U.S. This paper offers two key dimensions of trust in AI—human-like trust and functionality trust—and presents a (...)
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  13.  72
    Application of artificial intelligence: risk perception and trust in the work context with different impact levels and task types.Uwe Klein, Jana Depping, Laura Wohlfahrt & Pantaleon Fassbender - 2024 - AI and Society 39 (5):2445-2456.
    Following the studies of Araujo et al. (AI Soc 35:611–623, 2020) and Lee (Big Data Soc 5:1–16, 2018), this empirical study uses two scenario-based online experiments. The sample consists of 221 subjects from Germany, differing in both age and gender. The original studies are not replicated one-to-one. New scenarios are constructed as realistically as possible and focused on everyday work situations. They are based on the AI acceptance model of Scheuer (Grundlagen intelligenter KI-Assistenten und deren vertrauensvolle Nutzung. Springer, Wiesbaden, 2020) (...)
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  14. Responsible nudging for social good: new healthcare skills for AI-driven digital personal assistants.Marianna Capasso & Steven Umbrello - 2022 - Medicine, Health Care and Philosophy 25 (1):11-22.
    Traditional medical practices and relationships are changing given the widespread adoption of AI-driven technologies across the various domains of health and healthcare. In many cases, these new technologies are not specific to the field of healthcare. Still, they are existent, ubiquitous, and commercially available systems upskilled to integrate these novel care practices. Given the widespread adoption, coupled with the dramatic changes in practices, new ethical and social issues emerge due to how these systems nudge users into making decisions and changing (...)
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  15.  11
    Clinicians’ roles and necessary levels of understanding in the use of artificial intelligence: A qualitative interview study with German medical students.F. Funer, S. Tinnemeyer, W. Liedtke & S. Salloch - 2024 - BMC Medical Ethics 25 (1):1-13.
    Background Artificial intelligence-driven Clinical Decision Support Systems (AI-CDSS) are being increasingly introduced into various domains of health care for diagnostic, prognostic, therapeutic and other purposes. A significant part of the discourse on ethically appropriate conditions relate to the levels of understanding and explicability needed for ensuring responsible clinical decision-making when using AI-CDSS. Empirical evidence on stakeholders’ viewpoints on these issues is scarce so far. The present study complements the empirical-ethical body of research by, on the one hand, investigating (...)
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  16. Artificial intelligence ethics guidelines for developers and users: clarifying their content and normative implications.Mark Ryan & Bernd Carsten Stahl - 2021 - Journal of Information, Communication and Ethics in Society 19 (1):61-86.
    Purpose The purpose of this paper is clearly illustrate this convergence and the prescriptive recommendations that such documents entail. There is a significant amount of research into the ethical consequences of artificial intelligence. This is reflected by many outputs across academia, policy and the media. Many of these outputs aim to provide guidance to particular stakeholder groups. It has recently been shown that there is a large degree of convergence in terms of the principles upon which these guidance (...)
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  17.  67
    Collective Responsibility and Artificial Intelligence.Isaac Taylor - 2024 - Philosophy and Technology 37 (1):1-18.
    The use of artificial intelligence (AI) to make high-stakes decisions is sometimes thought to create a troubling responsibility gap – that is, a situation where nobody can be held morally responsible for the outcomes that are brought about. However, philosophers and practitioners have recently claimed that, even though no individual can be held morally responsible, groups of individuals might be. Consequently, they think, we have less to fear from the use of AI than might appear to be (...)
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  18.  5
    The Relationship Between Postmodern Religiosity and Artificial Intelligence Anxiety.İdris Yakut - 2025 - Tasavvur - Tekirdag Theology Journal 10 (2):899-940.
    The postmodern era can be defined as a period in which absolute truths are questioned, realities are differentiated and these differences make them-selves felt strongly in social, cultural, economic, religious, etc. areas, and tech-nology is at the centre of individual and social life. In this period, con-ventio-nal lifestyles, social and cultural values, and traditional understan-dings of religiosity are being reshaped as a reflection of the search for a new reality. However, artificial intelligence, which is rapidly developing as a (...)
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  19.  39
    The Epistemological Consequences of Artificial Intelligence, Precision Medicine, and Implantable Brain-Computer Interfaces.Ian Stevens - 2024 - Voices in Bioethics 10.
    ABSTRACT I argue that this examination and appreciation for the shift to abductive reasoning should be extended to the intersection of neuroscience and novel brain-computer interfaces too. This paper highlights the implications of applying abductive reasoning to personalized implantable neurotechnologies. Then, it explores whether abductive reasoning is sufficient to justify insurance coverage for devices absent widespread clinical trials, which are better applied to one-size-fits-all treatments. INTRODUCTION In contrast to the classic model of randomized-control trials, often with a large number of (...)
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  20. The Essential Turing: Seminal Writings in Computing, Logic, Philosophy, Artificial Intelligence, and Artificial Life: Plus the Secrets of Enigma.Jack Copeland (ed.) - 2004 - Oxford University Press.
    Alan M. Turing, pioneer of computing and WWII codebreaker, is one of the most important and influential thinkers of the twentieth century. In this volume for the first time his key writings are made available to a broad, non-specialist readership. They make fascinating reading both in their own right and for their historic significance: contemporary computational theory, cognitive science, artificial intelligence, and artificial life all spring from this ground-breaking work, which is also rich in philosophical and logical (...)
     
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  21.  11
    The Ethics of Artificial Intelligence in Medicine: Preliminary Remarks.Steven S. Gouveia - 2024 - Global Philosophy 35 (1):1-17.
    The application of AI in medicine (AIM) is producing health practices more reliable, accurate and efficient than traditional medicine (TM) by assisting partly / totally the medical decision-making, such as the use of deep learning in diagnostic imagery, designing treatment plans or preliminary diagnosis. Yet, most of these AI systems are pure “black-boxes”: the practitioner understands the inputs and outputs of the system but cannot have access to what happens “inside” it and cannot offer an explanation, creating an opaque process (...)
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  22. Stress, Coping, and Resilience Before and After COVID-19: A Predictive Model Based on Artificial Intelligence in the University Environment.Francisco Manuel Morales-Rodríguez, Juan Pedro Martínez-Ramón, Inmaculada Méndez & Cecilia Ruiz-Esteban - 2021 - Frontiers in Psychology 12.
    The COVID-19 global health emergency has greatly impacted the educational field. Faced with unprecedented stress situations, professors, students, and families have employed various coping and resilience strategies throughout the confinement period. High and persistent stress levels are associated with other pathologies; hence, their detection and prevention are needed. Consequently, this study aimed to design a predictive model of stress in the educational field based on artificial intelligence that included certain sociodemographic variables, coping strategies, and resilience capacity, and (...)
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  23. A High Level Theory on the Nature of Intelligence and Consciousness.Arnau Garriga-Casanovas - manuscript
    Research into artificial intelligence has increased significantly in recent years. However, the fundamental question of what intelligence is and how it works remains open to some extent. Traditional definitions of intelligence are broad and lack clarity regarding its nature and mechanisms. The nature of consciousness is another matter that has been widely explored with multiple theories but for which we do not have a final agreed theory, especially in terms of its relation to intelligence. In (...)
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  24.  55
    Artificial intelligence ethics by design. Evaluating public perception on the importance of ethical design principles of artificial intelligence.Christopher Starke, Birte Keller & Kimon Kieslich - 2022 - Big Data and Society 9 (1).
    Despite the immense societal importance of ethically designing artificial intelligence, little research on the public perceptions of ethical artificial intelligence principles exists. This becomes even more striking when considering that ethical artificial intelligence development has the aim to be human-centric and of benefit for the whole society. In this study, we investigate how ethical principles are weighted in comparison to each other. This is especially important, since simultaneously considering ethical principles is not only costly, (...)
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  25.  36
    “Legal personality” of artificial intelligence: methodological problems of scientific reasoning by Ukrainian and EU experts.Oleksandr M. Kostenko, Konstantin I. Bieliakov, Oleksandr O. Tykhomyrov & Irina V. Aristova - forthcoming - AI and Society:1-11.
    The article provides a comprehensive analysis of scientific approaches to the formation of legal regulation of relations arising in the development and use of artificial intelligence technologies, their socio-legal status, as well as social, ethical, methodological, and practical legal issues with an emphasis on the fundamentals of natural legal doctrine. The author’s vision of the concept of human interaction and artificial intelligence from the standpoint of legal relations is given. Emphasis is placed on the need to (...)
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  26.  14
    Suitability evaluation method of urban and rural spatial planning based on artificial intelligence.Xiaopeng Li - 2022 - Journal of Intelligent Systems 31 (1):245-259.
    In order to realize the sustainable development of urban overall space, aiming at the increasingly serious environmental problems in the process of contemporary rapid urbanization, based on the relationship between urban and rural space and environmental capacity, a suitability evaluation method of urban and rural spatial planning based on artificial intelligence is proposed. This paper constructs the theoretical system of sustainable development evaluation of urban and rural spatial resources and uses artificial intelligence technology to reasonably select (...)
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  27.  97
    Artificial Intelligence and Human Enhancement: Can AI Technologies Make Us More (Artificially) Intelligent?Sven Nyholm - 2024 - Cambridge Quarterly of Healthcare Ethics 33 (1):76-88.
    This paper discusses two opposing views about the relation between artificial intelligence (AI) and human intelligence: on the one hand, a worry that heavy reliance on AI technologies might make people less intelligent and, on the other, a hope that AI technologies might serve as a form of cognitive enhancement. The worry relates to the notion that if we hand over too many intelligence-requiring tasks to AI technologies, we might end up with fewer opportunities to train (...)
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  28. An Intelligent Tutoring System for Teaching Grammar English Tenses.Mohammed I. Alhabbash, Ali O. Mahdi & Samy S. Abu Naser - 2016 - European Academic Research 4 (9):1-15.
    The evolution of Intelligent Tutoring System (ITS) is the result of the amount of research in the field of education and artificial intelligence in recent years. English is the third most common languages in the world and also is the internationally dominant in the telecommunications, science and trade, aviation, entertainment, radio and diplomatic language as most of the areas of work now taught in English. Therefore, the demand for learning English has increased. In this paper, we describe the (...)
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  29.  51
    Autonomous Artificial Intelligence and Liability: a Comment on List.Michael Da Silva - 2022 - Philosophy and Technology 35 (2):1-6.
    Christian List argues that responsibility gaps created by viewing artificial intelligence as intentional agents are problematic enough that regulators should only permit the use of autonomous AI in high-stakes settings where AI is designed to be moral or a liability transfer agreement will fill any gaps. This work challenges List’s proposed condition. A requirement for “moral” AI is too onerous given technical challenges and other ways to check AI quality. Moreover, transfer agreements only plausibly fill responsibility gaps (...)
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  30.  53
    The Indian approach to Artificial Intelligence: an analysis of policy discussions, constitutional values, and regulation.P. R. Biju & O. Gayathri - 2024 - AI and Society 39 (5):2321-2335.
    India has produced several drafts of data policies. In this work, they are referred to [1] JBNSCR 2018, [2] DPDPR 2018, [3] NSAI 2018, [4] RAITF 2018, [5] PDPB 2019, [6] PRAI 2021, [7] JPCR 2021, [8] IDAUP 2022, [9] IDABNUP 2022. All of them consider Artificial Intelligence (AI) a social problem solver at the societal level, let alone an incentive for economic growth. However, these policy drafts warn of the social disruptions caused by algorithms and encourage (...)
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  31.  75
    The ethics of artificial intelligence, UNESCO and the African Ubuntu perspective.Dorine Eva van Norren - 2023 - Journal of Information, Communication and Ethics in Society 21 (1):112-128.
    PurposeThis paper aims to demonstrate the relevance of worldviews of the global south to debates of artificial intelligence, enhancing the human rights debate on artificial intelligence (AI) and critically reviewing the paper of UNESCO Commission on the Ethics of Scientific Knowledge and Technology (COMEST) that preceded the drafting of the UNESCO guidelines on AI. Different value systems may lead to different choices in programming and application of AI. Programming languages may acerbate existing biases as a people’s (...)
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  32. Can AI become an Expert?Hyeongyun Kim - 2024 - Journal of Ai Humanities 16 (4):113-136.
    With the rapid development of artificial intelligence (AI), understanding its capabilities and limitations has become significant for mitigating unfounded anxiety and unwarranted optimism. As part of this endeavor, this study delves into the following question: Can AI become an expert? More precisely, should society confer the authority of experts on AI even if its decision-making process is highly opaque? Throughout the investigation, I aim to identify certain normative challenges in elevating current AI to a level comparable (...)
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  33.  38
    Karl Jaspers and artificial neural nets: on the relation of explaining and understanding artificial intelligence in medicine.Christopher Poppe & Georg Starke - 2022 - Ethics and Information Technology 24 (3):1-10.
    Assistive systems based on Artificial Intelligence (AI) are bound to reshape decision-making in all areas of society. One of the most intricate challenges arising from their implementation in high-stakes environments such as medicine concerns their frequently unsatisfying levels of explainability, especially in the guise of the so-called black-box problem: highly successful models based on deep learning seem to be inherently opaque, resisting comprehensive explanations. This may explain why some scholars claim that research should focus on rendering AI (...)
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  34.  80
    Artificial intelligence in support of the circular economy: ethical considerations and a path forward.Huw Roberts, Joyce Zhang, Ben Bariach, Josh Cowls, Ben Gilburt, Prathm Juneja, Andreas Tsamados, Marta Ziosi, Mariarosaria Taddeo & Luciano Floridi - forthcoming - AI and Society:1-14.
    The world’s current model for economic development is unsustainable. It encourages high levels of resource extraction, consumption, and waste that undermine positive environmental outcomes. Transitioning to a circular economy (CE) model of development has been proposed as a sustainable alternative. Artificial intelligence (AI) is a crucial enabler for CE. It can aid in designing robust and sustainable products, facilitate new circular business models, and support the broader infrastructures needed to scale circularity. However, to date, considerations of the (...)
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  35.  11
    Value Orientations of Artificial Intelligence Technologies in USA and China: A Philosophical Analysis.Антон Максимович Савельев, Денис Александрович Журенков & Артем Евгеньевич Пойкин - 2022 - Russian Journal of Philosophical Sciences 65 (1):124-143.
    Artificial Intelligence (AI) in the 21st century is no longer perceived as a purely technological phenomenon, more and more becoming a social and humanitarian phenomenon that develops in a complex context of cultural, value, philosophical, and ethical aspects of human life. The impact of AIrelated technologies on contemporary society is still difficult to assess fully, which does not prevent enthusiastic researchers and political leaders from attempting to define a value framework that will ensure the use of AI for (...)
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  36. The paradox of the artificial intelligence system development process: the use case of corporate wellness programs using smart wearables.Alessandra Angelucci, Ziyue Li, Niya Stoimenova & Stefano Canali - forthcoming - AI and Society:1-11.
    Artificial intelligence systems have been widely applied to various contexts, including high-stake decision processes in healthcare, banking, and judicial systems. Some developed AI models fail to offer a fair output for specific minority groups, sparking comprehensive discussions about AI fairness. We argue that the development of AI systems is marked by a central paradox: the less participation one stakeholder has within the AI system’s life cycle, the more influence they have over the way the system will function. (...)
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  37.  7
    Convergence of Diverse Expertise: A Multidisciplinary Training on the Ethics of Artificial Intelligence in Healthcare Technology and Research.Russell Franco D’Souza, Krishna Mohan Surapaneni, Sathyanarayanan P., Annamalai Regupathy, Mary Mathew, Vedprakash Mishra, Ani Grace Kalaimathi, Geethalakshmi Sekkizhar, Rajiv Tandon, Princy Louis Palatty & Vivek Mady - forthcoming - Journal of Academic Ethics:1-15.
    The integration of artificial intelligence (AI) into healthcare and research introduces sophisticated diagnostic and treatment capabilities but also raises significant ethical challenges from development to deployment and evaluation, requiring comprehensive ethical training and interdisciplinary collaboration to ensure the responsible use of AI technologies. The “CONNECT with AI”- Collaborative Opportunity to Navigate and Negotiate Ethical Challenges and Trials with Artificial Intelligence) workshop was a three-day event, engaging multi-institutional interdisciplinary and interprofessional participants (both industry professionals and academicians) from (...)
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  38.  11
    On High-Level Inferencing and the Variable Binding Problem in Connectionist Networks.Steffen Hölldobler - 1990 - In G. Dorffner (ed.), Konnektionismus in Artificial Intelligence Und Kognitionsforschung. Berlin: Springer-Verlag. pp. 180--185.
  39.  31
    COVID-19, artificial intelligence, ethical challenges and policy implications.Muhammad Anshari, Mahani Hamdan, Norainie Ahmad, Emil Ali & Hamizah Haidi - 2023 - AI and Society 38 (2):707-720.
    As the COVID-19 outbreak remains an ongoing issue, there are concerns about its disruption, the level of its disruption, how long this pandemic is going to last, and how innovative technological solutions like Artificial Intelligence (AI) and expert systems can assist to deal with this pandemic. AI has the potential to provide extremely accurate insights for an organization to make better decisions based on collected data. Despite the numerous advantages that may be achieved by AI, the (...)
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  40.  80
    The Switch, the Ladder, and the Matrix: Models for Classifying AI Systems.Jakob Mökander, Margi Sheth, David S. Watson & Luciano Floridi - 2023 - Minds and Machines 33 (1):221-248.
    Organisations that design and deploy artificial intelligence (AI) systems increasingly commit themselves to high-level, ethical principles. However, there still exists a gap between principles and practices in AI ethics. One major obstacle organisations face when attempting to operationalise AI Ethics is the lack of a well-defined material scope. Put differently, the question to which systems and processes AI ethics principles ought to apply remains unanswered. Of course, there exists no universally accepted definition of AI, and different (...)
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  41.  18
    Privacy Considerations in the Canadian Regulation of Commercially-Operated Healthcare Artificial Intelligence.Blake Murdoch, Allison Jandura & Timothy Caulfield - 2022 - Canadian Journal of Bioethics / Revue canadienne de bioéthique 5 (4):44-52.
    Artificial intelligence (AI) is increasingly being developed and implemented in healthcare. This presents privacy issues since many AIs are privately owned and rely on data sharing arrangements for mass quantities of patient health information. We investigated the Canadian legal and policy framework focusing on regulation relevant to the potential for inappropriate use or disclosure of personal health information by private AI companies. This included analysis of federal and provincial legislation, common law and research ethics policy. Our evaluation of (...)
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  42.  24
    Subjectivity of Explainable Artificial Intelligence.Александр Николаевич Райков - 2022 - Russian Journal of Philosophical Sciences 65 (1):72-90.
    The article addresses the problem of identifying methods to develop the ability of artificial intelligence (AI) systems to provide explanations for their findings. This issue is not new, but, nowadays, the increasing complexity of AI systems is forcing scientists to intensify research in this direction. Modern neural networks contain hundreds of layers of neurons. The number of parameters of these networks reaches trillions, genetic algorithms generate thousands of generations of solutions, and the semantics of AI models become more (...)
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  43.  86
    Practical, epistemic and normative implications of algorithmic bias in healthcare artificial intelligence: a qualitative study of multidisciplinary expert perspectives.Yves Saint James Aquino, Stacy M. Carter, Nehmat Houssami, Annette Braunack-Mayer, Khin Than Win, Chris Degeling, Lei Wang & Wendy A. Rogers - forthcoming - Journal of Medical Ethics.
    Background There is a growing concern about artificial intelligence (AI) applications in healthcare that can disadvantage already under-represented and marginalised groups (eg, based on gender or race). Objectives Our objectives are to canvas the range of strategies stakeholders endorse in attempting to mitigate algorithmic bias, and to consider the ethical question of responsibility for algorithmic bias. Methodology The study involves in-depth, semistructured interviews with healthcare workers, screening programme managers, consumer health representatives, regulators, data scientists and developers. Results Findings (...)
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  44.  14
    Neuromonitoring Correlates of Expertise Level in Surgical Performers: A Systematic Review.Theodore C. Hannah, Daniel Turner, Rebecca Kellner, Joshua Bederson, David Putrino & Christopher P. Kellner - 2022 - Frontiers in Human Neuroscience 16.
    Surgical expertise does not have a clear definition and is often culturally associated with power, authority, prestige, and case number rather than more objective proxies of excellence. Multiple models of expertise progression have been proposed including the Dreyfus model, however, they all currently require subjective evaluation of skill. Recently, efforts have been made to improve the ways in which surgical excellence is measured and expertise is defined using artificial intelligence, video recordings, and accelerometers. However, these aforementioned methods of (...)
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  45.  38
    (1 other version)Experts or Authorities? The Strange Case of the Presumed Epistemic Superiority of Artificial Intelligence Systems.Andrea Ferrario, Alessandro Facchini & Alberto Termine - 2024 - Minds and Machines 34 (3):1-27.
    The high predictive accuracy of contemporary machine learning-based AI systems has led some scholars to argue that, in certain cases, we should grant them epistemic expertise and authority over humans. This approach suggests that humans would have the epistemic obligation of relying on the predictions of a highly accurate AI system. Contrary to this view, in this work we claim that it is not possible to endow AI systems with a genuine account of epistemic expertise. In fact, relying on (...)
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  46.  9
    Automating public policy: a comparative study of conversational artificial intelligence models and human expertise in crafting briefing notes.Stany Nzobonimpa, Jean-François Savard, Isabelle Caron & Justin Lawarée - forthcoming - AI and Society:1-13.
    This paper investigates the application of artificial intelligence (AI) language models in writing policy briefing notes within the context of public administration by juxtaposing the technologies’ performance against the traditional reliance on human expertise. Briefing notes are pivotal in informing decision-making processes in government contexts, which generally require high accuracy, clarity, and issue-relevance. Given the increasing integration of AI across various sectors, this study aims to evaluate the effectiveness and acceptability of AI-generated policy briefing notes. Using a (...)
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  47. Artificial intelligence and society: a furtive transformation. [REVIEW]Frederick Kile - 2013 - AI and Society 28 (1):107-115.
    During the 1950s, there was a burst of enthusiasm about whether artificial intelligence might surpass human intelligence. Since then, technology has changed society so dramatically that the focus of study has shifted toward society’s ability to adapt to technological change. Technology and rapid communications weaken the capacity of society to integrate into the broader social structure those people who have had little or no access to education. (Most of the recent use of communications by the excluded has (...)
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  48. In AI we trust? Perceptions about automated decision-making by artificial intelligence.Theo Araujo, Natali Helberger, Sanne Kruikemeier & Claes H. de Vreese - 2020 - AI and Society 35 (3):611-623.
    Fueled by ever-growing amounts of (digital) data and advances in artificial intelligence, decision-making in contemporary societies is increasingly delegated to automated processes. Drawing from social science theories and from the emerging body of research about algorithmic appreciation and algorithmic perceptions, the current study explores the extent to which personal characteristics can be linked to perceptions of automated decision-making by AI, and the boundary conditions of these perceptions, namely the extent to which such perceptions differ across media, (public) health, (...)
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  49.  1
    Dialogue on Artificial Intelligence’s Self-Awareness Between the Cognitive Science Expert and Large Language Model Claude 3 Opus: A Buddhist Scholar’s Perspective.Виктория Георгиевна Лысенко - 2024 - Russian Journal of Philosophical Sciences 67 (3):75-98.
    The article examines the dialogue between British cognitive science expert Murray Shanahan and the large language model Claude 3 Opus about “self-awareness” of artificial intelligence (AI). Adopting a text-centric approach, the author analyzes AI’s discourse through a hermeneutic lens from a reader’s perspective, irrespective of whether AI possesses consciousness or personhood. The article draws parallels between AI’s reasoning about the nature of consciousness and Buddhist concepts, especially the doctrine of dharmas, which underpins the Buddhist concept of anātman (...)
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    How ChatGPT Changed the Media’s Narratives on AI: A Semi-automated Narrative Analysis Through Frame Semantics.Igor Ryazanov, Carl Öhman & Johanna Björklund - 2024 - Minds and Machines 35 (1):1-24.
    We perform a mixed-method frame semantics-based analysis on a dataset of more than 49,000 sentences collected from 5846 news articles that mention AI. The dataset covers the twelve-month period centred around the launch of OpenAI’s chatbot ChatGPT and is collected from the most visited open-access English-language news publishers. Our findings indicate that during the six months succeeding the launch, media attention rose tenfold—from already historically high levels. During this period, discourse has become increasingly centred around experts and political leaders, (...)
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