Results for 'Evaluating AI'

978 found
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  1.  43
    The five tests: designing and evaluating AI according to indigenous Māori principles.Luke Munn - forthcoming - AI and Society:1-9.
    As AI technologies are increasingly deployed in work, welfare, healthcare, and other domains, there is a growing realization not only of their power but of their problems. AI has the capacity to reinforce historical injustice, to amplify labor precarity, and to cement forms of racial and gendered inequality. An alternate set of values, paradigms, and priorities are urgently needed. How might we design and evaluate AI from an indigenous perspective? This article draws upon the five Tests developed by Māori scholar (...)
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  2.  12
    身体教育における「格差」問題:学力以外の能力評価をめぐって.Ai Tanaka - 2021 - Journal of the Philosophy of Sport and Physical Education 43 (2):65-80.
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  3.  30
    What Science Fiction Can Demonstrate About Novelty in the Context of Discovery and Scientific Creativity.Clarissa Ai Ling Lee - 2019 - Foundations of Science 24 (4):705-725.
    Four instances of how science fiction contributes to the elucidation of novelty in the context of discovery are considered by extending existing discussions on temporal and use-novelty. In the first instance, science fiction takes an already well-known theory and produces its own re-interpretation; in the second instance, the scientific account is usually straightforward and whatever novelty that may occur would be more along the lines of how the science is deployed to extra-scientific matters; in the third instance, science fiction takes (...)
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  4.  38
    Evaluating the understanding of the ethical and moral challenges of Big Data and AI among Jordanian medical students, physicians in training, and senior practitioners: a cross-sectional study.Abdallah Al-Ani, Abdallah Rayyan, Ahmad Maswadeh, Hala Sultan, Ahmad Alhammouri, Hadeel Asfour, Tariq Alrawajih, Sarah Al Sharie, Fahed Al Karmi, Ahmad Azzam, Asem Mansour & Maysa Al-Hussaini - 2024 - BMC Medical Ethics 25 (1):1-14.
    Aims To examine the understanding of the ethical dilemmas associated with Big Data and artificial intelligence (AI) among Jordanian medical students, physicians in training, and senior practitioners. Methods We implemented a literature-validated questionnaire to examine the knowledge, attitudes, and practices of the target population during the period between April and August 2023. Themes of ethical debate included privacy breaches, consent, ownership, augmented biases, epistemology, and accountability. Participants’ responses were showcased using descriptive statistics and compared between groups using t-test or ANOVA. (...)
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  5. The Ethics of AI Ethics: An Evaluation of Guidelines.Thilo Hagendorff - 2020 - Minds and Machines 30 (1):99-120.
    Current advances in research, development and application of artificial intelligence systems have yielded a far-reaching discourse on AI ethics. In consequence, a number of ethics guidelines have been released in recent years. These guidelines comprise normative principles and recommendations aimed to harness the “disruptive” potentials of new AI technologies. Designed as a semi-systematic evaluation, this paper analyzes and compares 22 guidelines, highlighting overlaps but also omissions. As a result, I give a detailed overview of the field of AI ethics. Finally, (...)
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  6.  12
    Dynamic evaluation of college English writing ability based on AI technology.Xuezhong Wu - 2022 - Journal of Intelligent Systems 31 (1):298-309.
    To accurately evaluate and improve college students’ English writing ability, this article proposes a dynamic evaluation method of college English writing ability based on artificial intelligence technology. First, a dynamic evaluation model of college English writing ability is constructed. Second, the index system of English writing dynamic evaluation model is established. Based on this, the dynamic evaluation of college English writing ability is realized. The experimental results show that the design method in this paper can effectively realize the dynamic evaluation (...)
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  7.  18
    Identify and Assess Hydropower Project’s Multidimensional Social Impacts with Rough Set and Projection Pursuit Model.Hui An, Wenjing Yang, Jin Huang, Ai Huang, Zhongchi Wan & Min An - 2020 - Complexity 2020:1-16.
    To realize the coordinated and sustainable development of hydropower projects and regional society, comprehensively evaluating hydropower projects’ influence is critical. Usually, hydropower project development has an impact on environmental geology and social and regional cultural development. Based on comprehensive consideration of complicated geological conditions, fragile ecological environment, resettlement of reservoir area, and other factors of future hydropower development in each country, we have constructed a comprehensive evaluation index system of hydropower projects, including 4 first-level indicators of social economy, environment, (...)
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  8.  66
    Evaluating approaches for reducing catastrophic risks from AI.Leonard Dung - 2024 - AI and Ethics.
    According to a growing number of researchers, AI may pose catastrophic – or even existential – risks to humanity. Catastrophic risks may be taken to be risks of 100 million human deaths, or a similarly bad outcome. I argue that such risks – while contested – are sufficiently likely to demand rigorous discussion of potential societal responses. Subsequently, I propose four desiderata for approaches to the reduction of catastrophic risks from AI. The quality of such approaches can be assessed by (...)
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  9.  50
    AI in the Sky: How People Morally Evaluate Human and Machine Decisions in a Lethal Strike Dilemma.Bertram F. Malle, Stuti Thapa Magar & Matthias Scheutz - 2019 - In Maria Isabel Aldinhas Ferreira, João Silva Sequeira, Gurvinder Singh Virk, Mohammad Osman Tokhi & Endre E. Kadar, Robotics and Well-Being. Springer Verlag. pp. 111-133.
    Even though morally competent artificial agents have yet to emerge in society, we need insights from empirical science into how people will respond to such agents and how these responses should inform agent design. Three survey studies presented participants with an artificial intelligence agent, an autonomous drone, or a human drone pilot facing a moral dilemma in a military context: to either launch a missile strike on a terrorist compound but risk the life of a child, or to cancel the (...)
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  10.  49
    Effect of feedback in promoting adherence to an exercise programme: a randomized controlled trial.Masaaki Shakudo, Misa Takegami, Ai Shibata, Miki Kuzumaki, Takahiro Higashi, Yasuaki Hayashino, Yoshimi Suzukamo, Satoshi Morita, Michio Katsuki & Shunichi Fukuhara - 2011 - Journal of Evaluation in Clinical Practice 17 (1):7-11.
  11.  36
    C-Gait for Detecting Freezing of Gait in the Early to Middle Stages of Parkinson’s Disease: A Model Prediction Study.Zi-Yan Chen, Hong-Jiao Yan, Lin Qi, Qiao-Xia Zhen, Cui Liu, Ping Wang, Yong-Hong Liu, Rui-Dan Wang, Yan-Jun Liu, Jin-Ping Fang, Yuan Su, Xiao-Yan Yan, Ai-Xian Liu, Jianing Xi & Boyan Fang - 2021 - Frontiers in Human Neuroscience 15.
    GraphicalPatients with early- to middle-stage PD were enrolled for C-Gait assessment and traditional walking ability assessments. The correlation of C-Gait assessment and traditional walking tests were studied. Two models were established based on C-Gait assessment and traditional walking tests to explore the value of C-Gait assessment in predicting freezing of gait.ObjectiveEfficient methods for assessing walking adaptability in individuals with Parkinson’s disease are urgently needed. Therefore, this study aimed to assess C-Gait for detecting freezing of gait in patients with early- to (...)
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  12.  29
    Using AI Methods to Evaluate a Minimal Model for Perception.Chris Fields & Robert Prentner - 2019 - Open Philosophy 2 (1):503-524.
    The relationship between philosophy and research on artificial intelligence (AI) has been difficult since its beginning, with mutual misunderstanding and sometimes even hostility. By contrast, we show how an approach informed by both philosophy and AI can be productive. After reviewing some popular frameworks for computation and learning, we apply the AI methodology of “build it and see” to tackle the philosophical and psychological problem of characterizing perception as distinct from sensation. Our model comprises a network of very simple, but (...)
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  13.  23
    The AI/CS distinction and theory evaluation.Thomas W. Simon - 1978 - Behavioral and Brain Sciences 1 (1):114-115.
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  14.  65
    Using paper chart based clinical reminders to improve guideline adherence to lipid management.Chi-Sheng Hung, Jou-Wei Lin, Juey-Jen Hwang, Ru-Yi Tsai & Ai-Tzu Li - 2008 - Journal of Evaluation in Clinical Practice 14 (5):861-866.
  15.  14
    AI and mental health: evaluating supervised machine learning models trained on diagnostic classifications.Anna van Oosterzee - forthcoming - AI and Society:1-10.
    Machine learning (ML) has emerged as a promising tool in psychiatry, revolutionising diagnostic processes and patient outcomes. In this paper, I argue that while ML studies show promising initial results, their application in mimicking clinician-based judgements presents inherent limitations (Shatte et al. in Psychol Med 49:1426–1448. https://doi.org/10.1017/S0033291719000151, 2019). Most models still rely on DSM (the Diagnostic and Statistical Manual of Mental Disorders) categories, known for their heterogeneity and low predictive value. DSM's descriptive nature limits the validity of psychiatric diagnoses, which (...)
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  16. AI-Related Misdirection Awareness in AIVR.Nadisha-Marie Aliman & Leon Kester - manuscript
    Recent AI progress led to a boost in beneficial applications from multiple research areas including VR. Simultaneously, in this newly unfolding deepfake era, ethically and security-relevant disagreements arose in the scientific community regarding the epistemic capabilities of present-day AI. However, given what is at stake, one can postulate that for a responsible approach, prior to engaging in a rigorous epistemic assessment of AI, humans may profit from a self-questioning strategy, an examination and calibration of the experience of their own epistemic (...)
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  17. (1 other version)Correction to: Evaluating the understanding of the ethical and moral challenges of Big Data and AI among Jordanian medical students, physicians in training, and senior practitioners: a cross-sectional study.Abdallah Al-Ani, Abdallah Rayyan, Ahmad Maswadeh, Hala Sultan, Ahmed Alhammouri, Hadeel Asfour, Tariq Alrawajih, Sarah Al Sharie, Fahed Al Karmi, Ahmed Mahmoud Al-Azzam, Asem Mansour & Maysa Al-Hussaini - 2024 - BMC Medical Ethics 25 (1):1-1.
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  18.  92
    From understanding to justifying: Computational reliabilism for AI-based forensic evidence evaluation.Juan Manuel Durán, David van der Vloed, Arnout Ruifrok & Rolf J. F. Ypma - 2024 - Forensic Science International: Synergy 9.
    Techniques from artificial intelligence (AI) can be used in forensic evidence evaluation and are currently applied in biometric fields. However, it is generally not possible to fully understand how and why these algorithms reach their conclusions. Whether and how we should include such ‘black box’ algorithms in this crucial part of the criminal law system is an open question that has not only scientific but also ethical, legal, and philosophical angles. Ideally, the question should be debated by people with diverse (...)
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  19.  53
    Why Care About Sustainable AI? Some Thoughts From The Debate on Meaning in Life.Markus Rüther - 2024 - Philosophy and Technology 37 (1):1-19.
    The focus of AI ethics has recently shifted towards the question of whether and how the use of AI technologies can promote sustainability. This new research question involves discerning the sustainability of AI itself and evaluating AI as a tool to achieve sustainable objectives. This article aims to examine the justifications that one might employ to advocate for promoting sustainable AI. Specifically, it concentrates on a dimension of often disregarded reasons — reasons of “meaning” or “meaningfulness” — as discussed (...)
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  20. “Please understand we cannot provide further information”: evaluating content and transparency of GDPR-mandated AI disclosures.Alexander J. Wulf & Ognyan Seizov - 2024 - AI and Society 39 (1):235-256.
    The General Data Protection Regulation (GDPR) of the EU confirms the protection of personal data as a fundamental human right and affords data subjects more control over the way their personal information is processed, shared, and analyzed. However, where data are processed by artificial intelligence (AI) algorithms, asserting control and providing adequate explanations is a challenge. Due to massive increases in computing power and big data processing, modern AI algorithms are too complex and opaque to be understood by most data (...)
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  21. Evaluation and Design of Generalist Systems (EDGeS).John Beverley & Amanda Hicks - 2023 - Ai Magazine.
    The field of AI has undergone a series of transformations, each marking a new phase of development. The initial phase emphasized curation of symbolic models which excelled in capturing reasoning but were fragile and not scalable. The next phase was characterized by machine learning models—most recently large language models (LLMs)—which were more robust and easier to scale but struggled with reasoning. Now, we are witnessing a return to symbolic models as complementing machine learning. Successes of LLMs contrast with their inscrutability, (...)
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  22. 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 frameworks (...)
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  23.  39
    Reports of new healthcare AI interventions should include systematic ethical evaluations.Wendy A. Rogers, Heather Draper & Stacy M. Carter - 2022 - Bioethics 36 (6):728-730.
    Bioethics, Volume 36, Issue 6, Page 728-730, July 2022.
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  24. The “big red button” is too late: an alternative model for the ethical evaluation of AI systems.Thomas Arnold & Matthias Scheutz - 2018 - Ethics and Information Technology 20 (1):59-69.
    As a way to address both ominous and ordinary threats of artificial intelligence, researchers have started proposing ways to stop an AI system before it has a chance to escape outside control and cause harm. A so-called “big red button” would enable human operators to interrupt or divert a system while preventing the system from learning that such an intervention is a threat. Though an emergency button for AI seems to make intuitive sense, that approach ultimately concentrates on the point (...)
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  25. AI As a Moral Right-Holder.Joseph Bowen & John Basl - 2020 - In Markus Dirk Dubber, Frank Pasquale & Sunit Das, The Oxford Handbook of Ethics of Ai. Oxford Handbooks.
    This chapter evaluates whether AI systems are or will be rights-holders, explaining the conditions under which people should recognize AI systems as rights-holders. It develops a skeptical stance toward the idea that current forms of artificial intelligence are holders of moral rights, beginning with an articulation of one of the most prominent and most plausible theories of moral rights: the Interest Theory of rights. On the Interest Theory, AI systems will be rights-holders only if they have interests or a well-being. (...)
     
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  26.  50
    Expanding AI and AI Alignment Discourse: An Opportunity for Greater Epistemic Inclusion.A. E. Williams - manuscript
    The AI and AI alignment communities have been instrumental in addressing existential risks, developing alignment methodologies, and promoting rationalist problem-solving approaches. However, as AI research ventures into increasingly uncertain domains, there is a risk of premature epistemic convergence, where prevailing methodologies influence not only the evaluation of ideas but also determine which ideas are considered within the discourse. This paper examines critical epistemic blind spots in AI alignment research, particularly the lack of predictive frameworks to differentiate problems necessitating general intelligence, (...)
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  27.  82
    Publisher Correction to: The Ethics of AI Ethics: An Evaluation of Guidelines.Thilo Hagendorff - 2020 - Minds and Machines 30 (3):457-461.
    In the original publication of this article, the Table 1 has been published in a low resolution. Now a larger version of Table 1 is published in this correction. The publisher apologizes for the error made during production.
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  28.  63
    Exploring the potential utility of AI large language models for medical ethics: an expert panel evaluation of GPT-4.Michael Balas, Jordan Joseph Wadden, Philip C. Hébert, Eric Mathison, Marika D. Warren, Victoria Seavilleklein, Daniel Wyzynski, Alison Callahan, Sean A. Crawford, Parnian Arjmand & Edsel B. Ing - 2024 - Journal of Medical Ethics 50 (2):90-96.
    Integrating large language models (LLMs) like GPT-4 into medical ethics is a novel concept, and understanding the effectiveness of these models in aiding ethicists with decision-making can have significant implications for the healthcare sector. Thus, the objective of this study was to evaluate the performance of GPT-4 in responding to complex medical ethical vignettes and to gauge its utility and limitations for aiding medical ethicists. Using a mixed-methods, cross-sectional survey approach, a panel of six ethicists assessed LLM-generated responses to eight (...)
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  29.  11
    AI-based generative image production systems in the artistic problematisation of the past: the thematisation of memory and temporality in "AI art".Juan Martín Prada - forthcoming - AI and Society:1-12.
    This text analyses how generative AI systems are being employed in current artistic practice to question certain historical visual narratives, creating representations that challenge some conventional perceptions of the past and thus opening up new perspectives on the experience of temporality. In this regard, special emphasis will be placed on some artistic projects based on generative historical photography practices. These are works that develop new ways around ‘archival aesthetics’ (Sekula in October 39:3–64 1986; Buchloh in Deep storage. collecting, storing and (...)
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  30. Surveillance, security, and AI as technological acceptance.Yong Jin Park & S. Mo Jones-Jang - 2023 - AI and Society 38 (6):2667-2678.
    Public consumption of artificial intelligence (AI) technologies has been rarely investigated from the perspective of data surveillance and security. We show that the technology acceptance model, when properly modified with security and surveillance fears about AI, builds an insight on how individuals begin to use, accept, or evaluate AI and its automated decisions. We conducted two studies, and found positive roles of perceived ease of use (PEOU) and perceived usefulness (PU). AI security concern, however, negatively affected PEOU and PU, resulting (...)
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  31.  3
    AI-powered peer review needs human supervision.Mohamed L. Seghier - 2025 - Journal of Information, Communication and Ethics in Society 23 (1):104-116.
    Purpose This paper aims to appraise current challenges in adopting generative AI by reviewers to evaluate the readability and quality of submissions. The paper discusses how to make the AI-powered peer-review process immune to unethical practices, such as the proliferation of AI-generated poor-quality or fake reviews that could harm the value of peer review. Design/methodology/approach This paper examines the potential roles of AI in peer review, the challenges it raises and their mitigation. It critically appraises current opinions and practices while (...)
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  32. AI Systems Under Criminal Law: a Legal Analysis and a Regulatory Perspective.Francesca Lagioia & Giovanni Sartor - 2020 - Philosophy and Technology 33 (3):433-465.
    Criminal liability for acts committed by AI systems has recently become a hot legal topic. This paper includes three different contributions. The first contribution is an analysis of the extent to which an AI system can satisfy the requirements for criminal liability: accomplishing an actus reus, having the corresponding mens rea, possessing the cognitive capacities needed for responsibility. The second contribution is a discussion of criminal activity accomplished by an AI entity, with reference to a recent case involving an online (...)
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  33.  37
    Explainable AI and stakes in medicine: A user study.Sam Baron, Andrew James Latham & Somogy Varga - 2025 - Artificial Intelligence 340 (C):104282.
    The apparent downsides of opaque algorithms has led to a demand for explainable AI (XAI) methods by which a user might come to understand why an algorithm produced the particular output it did, given its inputs. Patients, for example, might find that the lack of explanation of the process underlying the algorithmic recommendations for diagnosis and treatment hinders their ability to provide informed consent. This paper examines the impact of two factors on user perceptions of explanations for AI systems in (...)
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  34.  6
    Gendered Response to Artificial Intelligence (AI) in Modern Linguistics: Evaluating the Perspectives of Senior Lecturers on Technological Innovations.Nisar Ahmad Koka - forthcoming - Evolutionary Studies in Imaginative Culture:646-659.
    The incorporation of Artificial Intelligence (AI) into contemporary linguistics exhibits a significant and transformational change in the discipline. AI technologies, which include natural language processing (NLP), machine learning, and computational linguistics, have significantly transformed the methods employed by linguists for studying, analyzing, and applying linguistic principles. However, as the integration of artificial intelligence (AI) within modern linguistics has presented novel opportunities, facilitating scholars in their investigation of language at an unprecedented scale and level of intricacy, it is pertinent to understand (...)
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  35.  10
    AI-Led Healthcare Leadership: Unveiling Nursing Trends and Pathways Ahead.Mona Mohammed Matmi, Sayed Shahbal, Amirah Senaitan Alharbi, Fatimah Atiah Almalki, Faizah Ayedh Almutairi, Amani Alawi Abualrahi, Maha Mohammed Alanazi, Wael Faleh Alanazi, Mohammed Malik Almuslim & Rida Mashhoor Alqahtani - forthcoming - Evolutionary Studies in Imaginative Culture:1028-1046.
    Background: Artificial intelligence (AI) is transforming healthcare systems by improving operational efficiency, simplifying patient care procedures, and improving diagnostic accuracy. Artificial intelligence (AI) technologies, like machine learning and natural language processing, present previously unheard-of chances to quickly and accurately evaluate enormous volumes of healthcare data, assisting with clinical decision-making and enhancing patient outcomes. Aim thorough examination and analysis of artificial intelligence's impact on healthcare leadership, with a particular emphasis on present nursing trends and their implications for the future. The study (...)
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  36. Why AI Doomsayers are Like Sceptical Theists and Why it Matters.John Danaher - 2015 - Minds and Machines 25 (3):231-246.
    An advanced artificial intelligence could pose a significant existential risk to humanity. Several research institutes have been set-up to address those risks. And there is an increasing number of academic publications analysing and evaluating their seriousness. Nick Bostrom’s superintelligence: paths, dangers, strategies represents the apotheosis of this trend. In this article, I argue that in defending the credibility of AI risk, Bostrom makes an epistemic move that is analogous to one made by so-called sceptical theists in the debate about (...)
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  37.  12
    Out of dataset, out of algorithm, out of mind: a critical evaluation of AI bias against disabled people.Rohan Manzoor, Wajahat Hussain & Muhammad Latif Anjum - forthcoming - AI and Society:1-11.
    Generative AI models are shaping our future. In this work, we discover and expose the bias against physically challenged people in generative models. Generative models (Stable Diffusion XL and DALL·E 3) are unable to generate content related to the physically challenged, e.g., inclusive washroom, even with very detailed prompts. Our analysis reveals that this disability bias emanates from biased AI datasets. We achieve this using a novel strategy to automatically discover bias against underrepresented groups like the physically challenged. Finally, we (...)
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  38.  93
    How persuasive is AI-generated argumentation? An analysis of the quality of an argumentative text produced by the GPT-3 AI text generator.Martin Hinton & Jean H. M. Wagemans - 2023 - Argument and Computation 14 (1):59-74.
    In this paper, we use a pseudo-algorithmic procedure for assessing an AI-generated text. We apply the Comprehensive Assessment Procedure for Natural Argumentation (CAPNA) in evaluating the arguments produced by an Artificial Intelligence text generator, GPT-3, in an opinion piece written for the Guardian newspaper. The CAPNA examines instances of argumentation in three aspects: their Process, Reasoning and Expression. Initial Analysis is conducted using the Argument Type Identification Procedure (ATIP) to establish, firstly, that an argument is present and, secondly, its (...)
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  39. 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, and judicial (...)
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  40.  9
    AI Training Program and its Impact on Improving Digital Stories Production Skills.Nashwa A. Younis, Mohamed SaadEldin Mohamed Ahmed, Ibrahim K. Alali & Rehab Tharwat Abd El Ghani Abo Bakr - forthcoming - Evolutionary Studies in Imaginative Culture:1295-1315.
    The current research aims at improving the skills of producing digital stories using the tools of generative artificial intelligence Chat GPT and Google Bard, which are necessary for female student teachers’ specialization: Kindergarten. The current research has used the descriptive approach and the experimental approach with a quasi-experimental design through a design based on one group and comparing the differences between the pre and post-evaluation. The study sample was randomly selected from female students teachers specializing in kindergarten, and their number (...)
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  41. Toward an Ethics of AI Assistants: an Initial Framework.John Danaher - 2018 - Philosophy and Technology 31 (4):629-653.
    Personal AI assistants are now nearly ubiquitous. Every leading smartphone operating system comes with a personal AI assistant that promises to help you with basic cognitive tasks: searching, planning, messaging, scheduling and so on. Usage of such devices is effectively a form of algorithmic outsourcing: getting a smart algorithm to do something on your behalf. Many have expressed concerns about this algorithmic outsourcing. They claim that it is dehumanising, leads to cognitive degeneration, and robs us of our freedom and autonomy. (...)
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  42.  84
    AI led ethical digital transformation: framework, research and managerial implications.Kumar Saurabh, Ridhi Arora, Neelam Rani, Debasisha Mishra & M. Ramkumar - 2022 - Journal of Information, Communication and Ethics in Society 20 (2):229-256.
    Purpose Digital transformation leverages digital technologies to change current processes and introduce new processes in any organisation’s business model, customer/user experience and operational processes. Artificial intelligence plays a significant role in achieving DT. As DT is touching each sphere of humanity, AI led DT is raising many fundamental questions. These questions raise concerns for the systems deployed, how they should behave, what risks they carry, the monitoring and evaluation control we have in hand, etc. These issues call for the need (...)
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  43.  21
    AI, Law and beyond. A transdisciplinary ecosystem for the future of AI & Law.Floris J. Bex - forthcoming - Artificial Intelligence and Law:1-18.
    We live in exciting times for AI and Law: technical developments are moving at a breakneck pace, and at the same time, the call for more robust AI governance and regulation grows stronger. How should we as an AI & Law community navigate these dramatic developments and claims? In this Presidential Address, I present my ideas for a way forward: researching, developing and evaluating real AI systems for the legal field with researchers from AI, Law and beyond. I will (...)
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  44.  53
    Generative AI and Argument Creativity.Louise Vigeant - 2024 - Informal Logic 44 (4):44-64.
    Generative AI appears to threaten argument creativity. Because of its capacity to generate coherent texts, individuals are likely to integrate its ideas, and not their own, into arguments, thereby reducing their creative contribution. This article argues that this view is mistaken—it rests on a misunderstanding of the nature of creativity. Within arguments, creative and critical thinking cannot be separated. Because creativity is enmeshed with skills such as analysis and evaluation, the use of generative AI in the construction of arguments, especially (...)
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  45.  79
    AI and Ethics When Human Beings Collaborate With AI Agents.José J. Cañas - 2022 - Frontiers in Psychology 13.
    The relationship between a human being and an AI system has to be considered as a collaborative process between two agents during the performance of an activity. When there is a collaboration between two people, a fundamental characteristic of that collaboration is that there is co-supervision, with each agent supervising the actions of the other. Such supervision ensures that the activity achieves its objectives, but it also means that responsibility for the consequences of the activity is shared. If there is (...)
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  46.  61
    Applying AI for social good: Aligning academic journal ratings with the United Nations Sustainable Development Goals (SDGs).David Steingard, Marcello Balduccini & Akanksha Sinha - 2023 - AI and Society 38 (2):613-629.
    This paper offers three contributions to the burgeoning movements of AI for Social Good (AI4SG) and AI and the United Nations Sustainable Development Goals (SDGs). First, we introduce the SDG-Intense Evaluation framework (SDGIE) that aims to situate variegated automated/AI models in a larger ecosystem of computational approaches to advance the SDGs. To foster knowledge collaboration for solving complex social and environmental problems encompassed by the SDGs, the SDGIE framework details a benchmark structure of data-algorithm-output to effectively standardize AI approaches to (...)
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    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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  48.  1
    AI metrics and policymaking: assumptions and challenges in the shaping of AI.Konstantinos Sioumalas-Christodoulou & Aristotle Tympas - forthcoming - AI and Society:1-16.
    This paper explores the interplay between AI metrics and policymaking by examining the conceptual and methodological frameworks of global AI metrics and their alignment with National Artificial Intelligence Strategies (NAIS). Through topic modeling and qualitative content analysis, key thematic areas in NAIS are identified. The findings suggest a misalignment between the technical and economic focus of global AI metrics and the broader societal and ethical priorities emphasized in NAIS. This highlights the need to recalibrate AI evaluation frameworks to include ethical (...)
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    Evaluation of artificial intelligence clinical applications: Detailed case analyses show value of healthcare ethics approach in identifying patient care issues.Wendy A. Rogers, Heather Draper & Stacy M. Carter - 2021 - Bioethics 35 (7):623-633.
    Bioethics, Volume 35, Issue 7, Page 623-633, September 2021.
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  50. Aspirational Affordances of AI.Sina Fazelpour & Meica Magnani - manuscript
    As artificial intelligence (AI) systems increasingly permeate processes of cultural and epistemic production, there are growing concerns about how their outputs may confine individuals and groups to static or restricted narratives about who or what they could be. In this paper, we advance the discourse surrounding these concerns by making three contributions. First, we introduce the concept of aspirational affordance to describe how technologies of representation---paintings, literature, photographs, films, or video games---shape the exercising of imagination, particularly as it pertains to (...)
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