Results for 'AI governance'

996 found
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  1.  4
    Weiwei-Isms.Ai Weiwei - 2012 - Princeton University Press.
    This collection of quotes demonstrates the elegant simplicity of Ai Weiwei's thoughts on key aspects of his art, politics, and life. A master at communicating powerful ideas in astonishingly few words, Ai Weiwei is known for his innovative use of social media to disseminate his views. The book is organized into six categories: freedom of expression; art and activism; government, power, and moral choices; the digital world; history, the historical moment, and the future; and personal reflections. Together, these quotes span (...)
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  2.  3
    Hide or report When insurance agents face policyholders’ fraudulent claims.Wanjie Niu, Haizhen Wang, Xin Ai, Xuefeng Wang & Jianming Bai - 2024 - International Journal of Business Governance and Ethics 1 (1).
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  3.  11
    Religious Perspectives on Precision Medicine in Singapore.Tamra Lysaght, Zhixia Tan, You Guang Shi, Swami Samachittananda, Sarabjeet Singh, Roland Chia, Raza Zaidi, Malminderjit Singh, Hung Yong Tay, Chitra Sankaran, Serene Ai Kiang Ong, Angela Ballantyne & Hui Jin Toh - 2021 - Asian Bioethics Review 13 (4):473-483.
    Precision medicine (PM) aims to revolutionise healthcare, but little is known about the role religion and spirituality might play in the ethical discourse about PM. This Perspective reports the outcomes of a knowledge exchange fora with religious authorities in Singapore about data sharing for PM. While the exchange did not identify any foundational religious objections to PM, ethical concerns were raised about the possibility for private industry to profiteer from social resources and the potential for genetic discrimination by private health (...)
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  4.  52
    The Oxford Handbook of AI Governance.Justin B. Bullock, Yu-Che Chen, Johannes Himmelreich, Valerie M. Hudson, Anton Korinek, Matthew M. Young & Baobao Zhang (eds.) - 2023 - Oxford University Press.
    As the capabilities of Artificial Intelligence (AI) have increased over recent years, so have the challenges of how to govern its usage. Consequently, prominent stakeholders across academia, government, industry, and civil society have called for states to devise and deploy principles, innovative policies, and best practices to regulate and oversee these increasingly powerful AI tools. Developing a robust AI governance system requires extensive collective efforts throughout the world. It also raises old questions of politics, democracy, and administration, but with (...)
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  5.  31
    Current State of AI Governance.Jovana Davidovic - 2022 - Babl Ai Reports.
  6. The Democratization of Global AI Governance and the Role of Tech Companies.Eva Erman - forthcoming - Nature Machine Intelligence.
  7. Innovating with confidence: embedding AI governance and fairness in a financial services risk management framework.Luciano Floridi, Michelle Seng Ah Lee & Alexander Denev - 2020 - Berkeley Technology Law Journal 34.
    An increasing number of financial services (FS) companies are adopting solutions driven by artificial intelligence (AI) to gain operational efficiencies, derive strategic insights, and improve customer engagement. However, the rate of adoption has been low, in part due to the apprehension around its complexity and self-learning capability, which makes auditability a challenge in a highly regulated industry. There is limited literature on how FS companies can implement the governance and controls specific to AI-driven solutions. AI auditing cannot be performed (...)
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  8.  55
    Beyond a Human Rights-Based Approach to AI Governance: Promise, Pitfalls, Plea.Nathalie A. Smuha - 2020 - Philosophy and Technology 34 (S1):91-104.
    This paper discusses the establishment of a governance framework to secure the development and deployment of “good AI”, and describes the quest for a morally objective compass to steer it. Asserting that human rights can provide such compass, this paper first examines what a human rights-based approach to AI governance entails, and sets out the promise it propagates. Subsequently, it examines the pitfalls associated with human rights, particularly focusing on the criticism that these rights may be too Western, (...)
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  9.  47
    Bringing older people’s perspectives on consumer socially assistive robots into debates about the future of privacy protection and AI governance.Andrea Slane & Isabel Pedersen - forthcoming - AI and Society:1-20.
    A growing number of consumer technology companies are aiming to convince older people that humanoid robots make helpful tools to support aging-in-place. As hybrid devices, socially assistive robots (SARs) are situated between health monitoring tools, familiar digital assistants, security aids, and more advanced AI-powered devices. Consequently, they implicate older people’s privacy in complex ways. Such devices are marketed to perform functions common to smart speakers (e.g., Amazon Echo) and smart home platforms (e.g., Google Home), while other functions are more specific (...)
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  10.  18
    Dutch Comfort: The Limits of AI Governance through Municipal Registers.Corinne Cath & Fieke Jansen - 2022 - Techné Research in Philosophy and Technology 26 (3):395-412.
    In this commentary, we respond to the editorial letter by Professor Luciano Floridi entitled “AI as a public service: Learning from Amsterdam and Helsinki.” Here, Floridi considers the positive impact of municipal AI registers, which collect a limited number of algorithmic systems used by the city of Amsterdam and Helsinki. We question a number of assumptions about AI registers as a governance model for automated systems. We start with recent attempts to normalize AI by decontextualizing and depoliticizing it, which (...)
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  11.  39
    Institutionalised distrust and human oversight of artificial intelligence: towards a democratic design of AI governance under the European Union AI Act.Johann Laux - forthcoming - AI and Society:1-14.
    Human oversight has become a key mechanism for the governance of artificial intelligence (“AI”). Human overseers are supposed to increase the accuracy and safety of AI systems, uphold human values, and build trust in the technology. Empirical research suggests, however, that humans are not reliable in fulfilling their oversight tasks. They may be lacking in competence or be harmfully incentivised. This creates a challenge for human oversight to be effective. In addressing this challenge, this article aims to make three (...)
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  12.  10
    Digital Sovereignty, Digital Expansionism, and the Prospects for Global AI Governance.Huw Roberts, Emmie Hine & Luciano Floridi - 2023 - In Marina Timoteo, Barbara Verri & Riccardo Nanni (eds.), Quo Vadis, Sovereignty? : New Conceptual and Regulatory Boundaries in the Age of Digital China. Springer Nature Switzerland. pp. 51-75.
    In recent years, policymakers, academics, and practitioners have increasingly called for the development of global governance mechanisms for artificial intelligence (AI). This paper considers the prospects for these calls in light of two other geopolitical trends: digital sovereignty and digital expansionism. While calls for global AI governance promote the surrender of some state sovereignty over AI, digital sovereignty and expansionism seek to secure greater state control over digital technologies. To demystify the tensions between these trends and their potential (...)
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  13.  4
    The role of collective agreements in times of uncertain AI governance: lessons from the Hollywood scriptwriters’ agreement.Aida Ponce del Castillo - forthcoming - AI and Society:1-2.
  14.  25
    AI urbanism: a design framework for governance, program, and platform cognition.Benjamin Bratton - forthcoming - AI and Society:1-6.
    Historically, the dynamic between philosophy of artificial intelligence and its practical application has been essential for the development of both, and thus the encounter between theory of AI and architectural/urban theory should be a site of considerable productivity. However, in many ways, it is not. This is due to two primary factors, one arising from each side of this encounter. First, legacies of overly-anthropomorphic models of AI permeate design discourses, where issues of how well AI can be constrained to social (...)
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  15.  28
    Governing algorithms from the South: a case study of AI development in Africa.Yousif Hassan - 2023 - AI and Society 38 (4):1429-1442.
    AI technology is capturing the African imaginations as a gateway to progress and prosperity. There is a growing interest in AI by different actors across the continent including scientists, researchers, humanitarian and aid organizations, academic institutions, tech start-ups, and media organizations. Several African states are looking to adopt AI technology to capture economic growth and development opportunities. On the other hand, African researchers highlight the gap in regulatory frameworks and policies that govern the development of AI in the continent. They (...)
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  16. Governing AI-Driven Health Research: Are IRBs Up to the Task?Phoebe Friesen, Rachel Douglas-Jones, Mason Marks, Robin Pierce, Katherine Fletcher, Abhishek Mishra, Jessica Lorimer, Carissa Véliz, Nina Hallowell, Mackenzie Graham, Mei Sum Chan, Huw Davies & Taj Sallamuddin - 2021 - Ethics and Human Research 2 (43):35-42.
    Many are calling for concrete mechanisms of oversight for health research involving artificial intelligence (AI). In response, institutional review boards (IRBs) are being turned to as a familiar model of governance. Here, we examine the IRB model as a form of ethics oversight for health research that uses AI. We consider the model's origins, analyze the challenges IRBs are facing in the contexts of both industry and academia, and offer concrete recommendations for how these committees might be adapted in (...)
     
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  17.  15
    “AI will fix this” – The Technical, Discursive, and Political Turn to AI in Governing Communication.Christian Katzenbach - 2021 - Big Data and Society 8 (2).
    Technologies of “artificial intelligence” and machine learning are increasingly presented as solutions to key problems of our societies. Companies are developing, investing in, and deploying machine learning applications at scale in order to filter and organize content, mediate transactions, and make sense of massive sets of data. At the same time, social and legal expectations are ambiguous, and the technical challenges are substantial. This is the introductory article to a special theme that addresses this turn to AI as a technical, (...)
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  18.  29
    AI ethics and data governance in the geospatial domain of Digital Earth.Marina Micheli, Caroline M. Gevaert, Mary Carman, Max Craglia, Emily Daemen, Rania E. Ibrahim, Alexander Kotsev, Zaffar Mohamed-Ghouse, Sven Schade, Ingrid Schneider, Lea A. Shanley, Alessio Tartaro & Michele Vespe - 2022 - Big Data and Society 9 (2).
    Digital Earth applications provide a common ground for visualizing, simulating, and modeling real-world situations. The potential of Digital Earth applications has increased significantly with the evolution of artificial intelligence systems and the capacity to collect and process complex amounts of geospatial data. Yet, the widespread techno-optimism at the root of Digital Earth must now confront concerns over high-risk artificial intelligence systems and power asymmetries of a datafied society. In this commentary, we claim that not only can current debates about data (...)
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  19.  7
    AI statecraft heating-up: the automation of governance through Canada’s Chinook case study.Nicolas Chartier-Edwards, Marek Blottiere & Jonathan Roberge - forthcoming - AI and Society:1-10.
    In the years 2020–2021, journalists, lawyers, scholars, and civil society actors noticed an unusual spike in the refusal of francophone African immigrants in Québec, Canada. While Immigration, refugee and citizenship Canada’s systemic racism problem were already documented, the novelty appeared to be how standardized and sometimes, “nonsensical” the reasons given to many of the applicants were. This eventually prompted a lawsuit against IRCC in which it was revealed that a new piece of software called “Chinook” had been deployed since 2018, (...)
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  20.  7
    Subnational AI policy: shaping AI in a multi-level governance system.Laura Liebig, Licinia Güttel, Anna Jobin & Christian Katzenbach - forthcoming - AI and Society:1-14.
    The promises and risks of Artificial Intelligence permeate current policy statements and have attracted much attention by AI governance research. However, most analyses focus exclusively on AI policy on the national and international level, overlooking existing federal governance structures. This is surprising because AI is connected to many policy areas, where the competences are already distributed between the national and subnational level, such as research or economic policy. Addressing this gap, this paper argues that more attention should be (...)
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  21.  17
    AI as a boss? A national US survey of predispositions governing comfort with expanded AI roles in society.Kate K. Mays, Yiming Lei, Rebecca Giovanetti & James E. Katz - 2022 - AI and Society 37 (4):1587-1600.
    People’s comfort with and acceptability of artificial intelligence (AI) instantiations is a topic that has received little systematic study. This is surprising given the topic’s relevance to the design, deployment and even regulation of AI systems. To help fill in our knowledge base, we conducted mixed-methods analysis based on a survey of a representative sample of the US population (_N_ = 2254). Results show that there are two distinct social dimensions to comfort with AI: as a peer and as a (...)
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  22.  10
    Imagining and governing artificial intelligence: the ordoliberal way—an analysis of the national strategy ‘AI made in Germany’.Jens Hälterlein - forthcoming - AI and Society:1-12.
    National Artificial Intelligence (AI) strategies articulate imaginaries of the integration of AI into society and envision the governing of AI research, development and applications accordingly. To integrate these central aspects of national AI strategies under one coherent perspective, this paper presented an analysis of Germany’s strategy ‘AI made in Germany’ through the conceptual lens of ordoliberal political rationality. The first part of the paper analyses how the guiding vision of a human-centric AI not only adheres to ethical and legal principles (...)
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  23.  37
    Embedding AI in society: ethics, policy, governance, and impacts.Michael Pflanzer, Veljko Dubljević, William A. Bauer, Darby Orcutt, George List & Munindar P. Singh - 2023 - AI and Society 38 (4):1267-1271.
  24.  22
    Governing (ir)responsibilities for future military AI systems.Liselotte Polderman - 2023 - Ethics and Information Technology 25 (1):1-4.
  25. The Concept of Accountability in AI Ethics and Governance.Theodore M. Lechterman - 2023 - In Justin B. Bullock, Yu-Che Chen, Johannes Himmelreich, Valerie M. Hudson, Anton Korinek, Matthew M. Young & Baobao Zhang (eds.), The Oxford Handbook of AI Governance. Oxford University Press.
    Calls to hold artificial intelligence to account are intensifying. Activists and researchers alike warn of an “accountability gap” or even a “crisis of accountability” in AI. Meanwhile, several prominent scholars maintain that accountability holds the key to governing AI. But usage of the term varies widely in discussions of AI ethics and governance. This chapter begins by disambiguating some different senses and dimensions of accountability, distinguishing it from neighboring concepts, and identifying sources of confusion. It proceeds to explore the (...)
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  26.  3
    The case for global governance of AI: arguments, counter-arguments, and challenges ahead.Mark Coeckelbergh - forthcoming - AI and Society:1-4.
    It is increasingly recognized that as artificial intelligence becomes more powerful and pervasive in society and creates risks and ethical issues that cross borders, a global approach is needed for the governance of these risks. But why, exactly, do we need this and what does that mean? In this Open Forum paper, author argues for global governance of AI for moral reasons but also outlines the governance challenges that this project raises.
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  27.  23
    Promoting responsible AI : A European perspective on the governance of artificial intelligence in media and journalism.Colin Porlezza - 2023 - Communications 48 (3):370-394.
    Artificial intelligence and automation have become pervasive in news media, influencing journalism from news gathering to news distribution. As algorithms are increasingly determining editorial decisions, specific concerns have been raised with regard to the responsible and accountable use of AI-driven tools by news media, encompassing new regulatory and ethical questions. This contribution aims to analyze whether and to what extent the use of AI technology in news media and journalism is currently regulated and debated within the European Union and the (...)
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  28.  33
    An Institutionalist Approach to AI Ethics: Justifying the Priority of Government Regulation over Self-Regulation.Thomas Ferretti - 2022 - Moral Philosophy and Politics 9 (2):239-265.
    This article explores the cooperation of government and the private sector to tackle the ethical dimension of artificial intelligence. The argument draws on the institutionalist approach in philosophy and business ethics defending a ‘division of moral labor’ between governments and the private sector. The goal and main contribution of this article is to explain how this approach can provide ethical guidelines to the AI industry and to highlight the limits of self-regulation. In what follows, I discuss three institutionalist claims. First, (...)
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  29.  74
    Cultural Differences as Excuses? Human Rights and Cultural Values in Global Ethics and Governance of AI.Pak-Hang Wong - 2020 - Philosophy and Technology 33 (4):705-715.
    Cultural differences pose a serious challenge to the ethics and governance of artificial intelligence from a global perspective. Cultural differences may enable malignant actors to disregard the demand of important ethical values or even to justify the violation of them through deference to the local culture, either by affirming the local culture lacks specific ethical values, e.g., privacy, or by asserting the local culture upholds conflicting values, e.g., state intervention is good. One response to this challenge is the human (...)
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  30.  32
    Political Machines: Ethical Governance in the Age of AI.Fiona J. McEvoy - 2019 - Moral Philosophy and Politics 6 (2):337-356.
    Policymakers are responsible for key decisions about political governance. Usually, they are selected or elected based on experience and then supported in their decision-making by the additional counsel of subject experts. Those satisfied with this system believe these individuals – generally speaking – will have the right intuitions about the best types of action. This is important because political decisions have ethical implications; they affect how we all live in society. Nevertheless, there is a wealth of research that cautions (...)
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  31.  37
    New Pythias of public administration: ambiguity and choice in AI systems as challenges for governance.Fernando Filgueiras - 2022 - AI and Society 37 (4):1473-1486.
    As public administrations adopt artificial intelligence (AI), we see this transition has the potential to transform public service and public policies, by offering a rapid turnaround on decision making and service delivery. However, a recent series of criticisms have pointed to problematic aspects of mainstreaming AI systems in public administration, noting troubled outcomes in terms of justice and values. The argument supplied here is that any public administration adopting AI systems must consider and address ambiguities and uncertainties surrounding two key (...)
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  32.  37
    Overcoming Barriers to Cross-cultural Cooperation in AI Ethics and Governance.Seán S. ÓhÉigeartaigh, Jess Whittlestone, Yang Liu, Yi Zeng & Zhe Liu - 2020 - Philosophy and Technology 33 (4):571-593.
    Achieving the global benefits of artificial intelligence (AI) will require international cooperation on many areas of governance and ethical standards, while allowing for diverse cultural perspectives and priorities. There are many barriers to achieving this at present, including mistrust between cultures, and more practical challenges of coordinating across different locations. This paper focuses particularly on barriers to cooperation between Europe and North America on the one hand and East Asia on the other, as regions which currently have an outsized (...)
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  33. AI Human Impact: Toward a Model for Ethical Investing in AI-Intensive Companies.James Brusseau - manuscript
    Does AI conform to humans, or will we conform to AI? An ethical evaluation of AI-intensive companies will allow investors to knowledgeably participate in the decision. The evaluation is built from nine performance indicators that can be analyzed and scored to reflect a technology’s human-centering. When summed, the scores convert into objective investment guidance. The strategy of incorporating ethics into financial decisions will be recognizable to participants in environmental, social, and governance investing, however, this paper argues that conventional ESG (...)
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  34.  21
    Where and when AI and CI meet: exploring the intersection of artificial and collective intelligence towards the goal of innovating how we govern.Stefaan G. Verhulst - 2018 - AI and Society 33 (2):293-297.
  35.  71
    AI Assertion.Patrick Butlin & Emanuel Viebahn - manuscript
    Modern AI systems have shown the capacity to produce remarkably fluent language, prompting debates both about their semantic understanding and, less prominently, about whether they can perform speech acts. This paper addresses the latter question, focusing on assertion. We argue that to be capable of assertion, an entity must meet two requirements: it must produce outputs with descriptive functions, and it must be capable of being sanctioned by agents with which it interacts. The second requirement arises from the nature of (...)
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  36.  18
    In Defence of Principlism in AI Ethics and Governance.Elizabeth Seger - 2022 - Philosophy and Technology 35 (2):1-7.
    It is widely acknowledged that high-level AI principles are difficult to translate into practices via explicit rules and design guidelines. Consequently, many AI research and development groups that claim to adopt ethics principles have been accused of unwarranted “ethics washing”. Accordingly, there remains a question as to if and how high-level principles should be expected to influence the development of safe and beneficial AI. In this short commentary I discuss two roles high-level principles might play in AI ethics and (...). The first and most often discussed “start-point” function quickly succumbs to the complaints outlined above. I suggest, however, that a second “cultural influence” function is where the primary value of high-level principles lies. (shrink)
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  37. Acceleration AI Ethics, the Debate between Innovation and Safety, and Stability AI’s Diffusion versus OpenAI’s Dall-E.James Brusseau - manuscript
    One objection to conventional AI ethics is that it slows innovation. This presentation responds by reconfiguring ethics as an innovation accelerator. The critical elements develop from a contrast between Stability AI’s Diffusion and OpenAI’s Dall-E. By analyzing the divergent values underlying their opposed strategies for development and deployment, five conceptions are identified as common to acceleration ethics. Uncertainty is understood as positive and encouraging, rather than discouraging. Innovation is conceived as intrinsically valuable, instead of worthwhile only as mediated by social (...)
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  38.  12
    Developing a Framework for Self-regulatory Governance in Healthcare AI Research: Insights from South Korea.Junhewk Kim, So Yoon Kim, Eun-Ae Kim, Jin-Ah Sim, Yuri Lee & Hannah Kim - forthcoming - Asian Bioethics Review:1-16.
    This paper elucidates and rationalizes the ethical governance system for healthcare AI research, as outlined in the ‘Research Ethics Guidelines for AI Researchers in Healthcare’ published by the South Korean government in August 2023. In developing the guidelines, a four-phase clinical trial process was expanded to six stages for healthcare AI research: preliminary ethics review (stage 1); creating datasets (stage 2); model development (stage 3); training, validation, and evaluation (stage 4); application (stage 5); and post-deployment monitoring (stage 6). Researchers (...)
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  39.  25
    The AI Needed for Ethical Decision Making Does Not Exist.Amelia Barwise & Brian Pickering - 2022 - American Journal of Bioethics 22 (7):46-49.
    When considering the introduction of AI to support medical decision-making, one must take an end-to-end, holistic approach to development, evaluation, integration and governance. (Cabitza and Zeito...
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  40. The AI gambit — leveraging artificial intelligence to combat climate change: opportunities, challenges, and recommendations.Josh Cowls, Andreas Tsamados, Mariarosaria Taddeo & Luciano Floridi - 2021 - In Josh Cowls, Andreas Tsamados, Mariarosaria Taddeo & Luciano Floridi (eds.), Vodafone Institute for Society and Communications.
    In this article we analyse the role that artificial intelligence (AI) could play, and is playing, to combat global climate change. We identify two crucial opportunities that AI offers in this domain: it can help improve and expand current understanding of climate change and it contribute to combating the climate crisis effectively. However, the development of AI also raises two sets of problems when considering climate change: the possible exacerbation of social and ethical challenges already associated with AI, and the (...)
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  41. Explainable AI lacks regulative reasons: why AI and human decision‑making are not equally opaque.Uwe Peters - forthcoming - AI and Ethics.
    Many artificial intelligence (AI) systems currently used for decision-making are opaque, i.e., the internal factors that determine their decisions are not fully known to people due to the systems’ computational complexity. In response to this problem, several researchers have argued that human decision-making is equally opaque and since simplifying, reason-giving explanations (rather than exhaustive causal accounts) of a decision are typically viewed as sufficient in the human case, the same should hold for algorithmic decision-making. Here, I contend that this argument (...)
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  42.  17
    Business Data Ethics: Emerging Models for Governing AI and Advanced Analytics.Dennis Hirsch, Timothy Bartley, Aravind Chandrasekaran, Davon Norris, Srinivasan Parthasarathy & Piers Norris Turner - 2023 - Springer.
    This open access book explains how leading business organizations attempt to achieve the responsible and ethical use of artificial intelligence (AI) and other advanced information technologies. These technologies can produce tremendous insights and benefits. But they can also invade privacy, perpetuate bias, and otherwise injure people and society. To use these technologies successfully, organizations need to implement them responsibly and ethically. The question is: how to do this? Data ethics management, and this book, provide some answers. -/- The authors interviewed (...)
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  43.  89
    AI, big data, and the future of consent.Adam J. Andreotta, Nin Kirkham & Marco Rizzi - 2022 - AI and Society 37 (4):1715-1728.
    In this paper, we discuss several problems with current Big data practices which, we claim, seriously erode the role of informed consent as it pertains to the use of personal information. To illustrate these problems, we consider how the notion of informed consent has been understood and operationalised in the ethical regulation of biomedical research (and medical practices, more broadly) and compare this with current Big data practices. We do so by first discussing three types of problems that can impede (...)
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  44.  22
    The AI gambit: leveraging artificial intelligence to combat climate change—opportunities, challenges, and recommendations.Josh Cowls, Andreas Tsamados, Mariarosaria Taddeo & Luciano Floridi - 2021 - AI and Society:1-25.
    In this article, we analyse the role that artificial intelligence (AI) could play, and is playing, to combat global climate change. We identify two crucial opportunities that AI offers in this domain: it can help improve and expand current understanding of climate change, and it can contribute to combatting the climate crisis effectively. However, the development of AI also raises two sets of problems when considering climate change: the possible exacerbation of social and ethical challenges already associated with AI, and (...)
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  45.  28
    Talking AI into Being: The Narratives and Imaginaries of National AI Strategies and Their Performative Politics.Christian Katzenbach & Jascha Bareis - 2022 - Science, Technology, and Human Values 47 (5):855-881.
    How to integrate artificial intelligence technologies in the functioning and structures of our society has become a concern of contemporary politics and public debates. In this paper, we investigate national AI strategies as a peculiar form of co-shaping this development, a hybrid of policy and discourse that offers imaginaries, allocates resources, and sets rules. Conceptually, the paper is informed by sociotechnical imaginaries, the sociology of expectations, myths, and the sublime. Empirically we analyze AI policy documents of four key players in (...)
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  46. AI for Social Good, AI for Datong.Pak-Hang Wong - 2021 - Informatio 26 (1):42-57.
    The Chinese government and technology companies assume a proactive stance towards digital technologies and AI and their roles in users’—and more generally, people’s—lives. This vision of ‘Tech for Good’, i.e., the development of good digital technologies and AI or the application of them for good, is also shared by major technology companies in the globe, e.g., Google, Microsoft, and Facebook. Interestingly, these initiatives have invited a number of critiques for their feasibility and desirability, particularly in relation to the social and (...)
     
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  47.  71
    AI in the headlines: the portrayal of the ethical issues of artificial intelligence in the media.Leila Ouchchy, Allen Coin & Veljko Dubljević - 2020 - AI and Society 35 (4):927-936.
    As artificial intelligence technologies become increasingly prominent in our daily lives, media coverage of the ethical considerations of these technologies has followed suit. Since previous research has shown that media coverage can drive public discourse about novel technologies, studying how the ethical issues of AI are portrayed in the media may lead to greater insight into the potential ramifications of this public discourse, particularly with regard to development and regulation of AI. This paper expands upon previous research by systematically analyzing (...)
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  48.  56
    The AI gambit: leveraging artificial intelligence to combat climate change—opportunities, challenges, and recommendations.Josh Cowls, Andreas Tsamados, Mariarosaria Taddeo & Luciano Floridi - 2023 - AI and Society 38 (1):283-307.
    In this article, we analyse the role that artificial intelligence (AI) could play, and is playing, to combat global climate change. We identify two crucial opportunities that AI offers in this domain: it can help improve and expand current understanding of climate change, and it can contribute to combatting the climate crisis effectively. However, the development of AI also raises two sets of problems when considering climate change: the possible exacerbation of social and ethical challenges already associated with AI, and (...)
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  49.  70
    Conservative AI and social inequality: conceptualizing alternatives to bias through social theory.Mike Zajko - 2021 - AI and Society 36 (3):1047-1056.
    In response to calls for greater interdisciplinary involvement from the social sciences and humanities in the development, governance, and study of artificial intelligence systems, this paper presents one sociologist’s view on the problem of algorithmic bias and the reproduction of societal bias. Discussions of bias in AI cover much of the same conceptual terrain that sociologists studying inequality have long understood using more specific terms and theories. Concerns over reproducing societal bias should be informed by an understanding of the (...)
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    Operationalising AI ethics: how are companies bridging the gap between practice and principles? An exploratory study.Javier Camacho Ibáñez & Mónica Villas Olmeda - 2022 - AI and Society 37 (4):1663-1687.
    Despite the increase in the research field of ethics in artificial intelligence, most efforts have focused on the debate about principles and guidelines for responsible AI, but not enough attention has been given to the “how” of applied ethics. This paper aims to advance the research exploring the gap between practice and principles in AI ethics by identifying how companies are applying those guidelines and principles in practice. Through a qualitative methodology based on 22 semi-structured interviews and two focus groups, (...)
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