Results for 'Machine Reasoning'

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  1. The irrelevance of democracy to the public justification of political authority.Dean J. Machin - 2009 - Res Publica 15 (2):103-120.
    Democracy can be a means to independently valuable ends and/or it can be intrinsically (or non-instrumentally) valuable. One powerful non-instrumental defence of democracy is based on the idea that only it can publicly justify political authority. I contend that this is an argument about the reasonable acceptability of political authority and about the requirements of publicity and that satisfying these requirements has nothing to do with whether a society is democratic or not. Democracy, then, plays no role in publicly justifying (...)
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  2.  33
    Beyond Criticism of Ethics Review Boards: Strategies for Engaging Research Communities and Enhancing Ethical Review Processes.Andrew Hickey, Samantha Davis, Will Farmer, Julianna Dawidowicz, Clint Moloney, Andrea Lamont-Mills, Jess Carniel, Yosheen Pillay, David Akenson, Annette Brömdal, Richard Gehrmann, Dean Mills, Tracy Kolbe-Alexander, Tanya Machin, Suzanne Reich, Kim Southey, Lynda Crowley-Cyr, Taiji Watanabe, Josh Davenport, Rohit Hirani, Helena King, Roshini Perera, Lucy Williams, Kurt Timmins, Michael Thompson, Douglas Eacersall & Jacinta Maxwell - 2022 - Journal of Academic Ethics 20 (4):549-567.
    A growing body of literature critical of ethics review boards has drawn attention to the processes used to determine the ethical merit of research. Citing criticism on the bureaucratic nature of ethics review processes, this literature provides a useful provocation for (re)considering how the ethics review might be enacted. Much of this criticism focuses on how ethics review boards _deliberate,_ with particular attention given to the lack of transparency and opportunities for researcher recourse that characterise ethics review processes. Centered specifically (...)
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  3.  21
    Prepared for practice? UK Foundation doctors’ confidence in dealing with ethical issues in the workplace.Lorraine Corfield, Richard Alun Williams, Claire Lavelle, Natalie Latcham, Khojasta Talash & Laura Machin - 2021 - Journal of Medical Ethics 47 (12):e25-e25.
    This paper investigates the medical law and ethics learning needs of Foundation doctors by means of a national survey developed in association with key stakeholders including the General Medical Council and Health Education England. Four hundred sevnty-nine doctors completed the survey. The average self-reported level of preparation in MEL was 63%. When asked to rate how confident they felt in approaching three cases of increasing ethical complexity, more FYs were fully confident in the more complex cases than in the more (...)
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  4.  8
    Proceedings of the 1986 Conference on Theoretical Aspects of Reasoning about Knowledge: March 19-22, 1988, Monterey, California.Joseph Y. Halpern, International Business Machines Corporation, American Association of Artificial Intelligence, United States & Association for Computing Machinery - 1986
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  5. Autonomous Machines, Moral Judgment, and Acting for the Right Reasons.Duncan Purves, Ryan Jenkins & Bradley J. Strawser - 2015 - Ethical Theory and Moral Practice 18 (4):851-872.
    We propose that the prevalent moral aversion to AWS is supported by a pair of compelling objections. First, we argue that even a sophisticated robot is not the kind of thing that is capable of replicating human moral judgment. This conclusion follows if human moral judgment is not codifiable, i.e., it cannot be captured by a list of rules. Moral judgment requires either the ability to engage in wide reflective equilibrium, the ability to perceive certain facts as moral considerations, moral (...)
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  6.  43
    Nonmonotonic Reasoning , Argumentation and Machine Learning 1 Introduction.Peter Clark - 1990 - Argumentation:1-11.
    Machine learning and nonmonotonic reasoning are closely related, both concerned with making plausible as well as certain inferences based on available data. In this document a brief overview of different approaches to nonmonotonic reasoning is presented, and it is shown how the concept of argumentation systems arises. The relationship with machine learning work is also discussed. The document aims to highlight the links between nonmonotonic reasoning, argumentation and machine learning and as a result propose (...)
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  7.  20
    Intelligent machines, care work and the nature of practical reasoning.Angus Robson - 2019 - Nursing Ethics 26 (7-8):1906-1916.
    Background:The debate over the ethical implications of care robots has raised a range of concerns, including the possibility that such technologies could disrupt caregiving as a core human moral activity. At the same time, academics in information ethics have argued that we should extend our ideas of moral agency and rights to include intelligent machines.Research objectives:This article explores issues of the moral status and limitations of machines in the context of care.Design:A conceptual argument is developed, through a four-part scheme derived (...)
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  8.  21
    Reasoning Patterns in Galileo’s Analysis of Machines and in Expert Protocols: Roles for Analogy, Imagery, and Mental Simulation.John J. Clement - 2020 - Topoi 39 (4):973-985.
    Reasoning patterns found in Galileo’s treatise on machines, On Mechanics, are compared with patterns identified in case studies of scientifically trained experts thinking aloud, and many similarities are found. At one level the primary patterns identified are ordered analogy sequences and special diagrammatic techniques to support them. At a deeper level I develop constructs to describe patterns that can support embodied, imagistic, mental simulations as a central underlying process. Additionally, a larger hypothesized pattern of ‘progressive imagistic generalization’—Galileo’s development of (...)
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  9. Machine learning, inductive reasoning, and reliability of generalisations.Petr Spelda - 2020 - AI and Society 35 (1):29-37.
    The present paper shows how statistical learning theory and machine learning models can be used to enhance understanding of AI-related epistemological issues regarding inductive reasoning and reliability of generalisations. Towards this aim, the paper proceeds as follows. First, it expounds Price’s dual image of representation in terms of the notions of e-representations and i-representations that constitute subject naturalism. For Price, this is not a strictly anti-representationalist position but rather a dualist one (e- and i-representations). Second, the paper links (...)
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  10.  20
    Inductive reasoning in minds and machines.Sudeep Bhatia - forthcoming - Psychological Review.
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  11. On Reason and Spectral Machines: Robert Brandom and Bounded Posthumanism.David Roden - 2017 - In Rosi Braidotti & Rick Dolphijn (eds.), Philosophy After Nature. Lanham: Rowman & Littlefield International. pp. 99-119.
    I distinguish two theses regarding technological successors to current humans (posthumans): an anthropologically bounded posthumanism (ABP) and an anthropologically unbounded posthumanism (AUP). ABP proposes transcendental conditions on agency that can be held to constrain the scope for “weirdness” in the space of possible posthumans a priori. AUP, by contrast, leaves the nature of posthuman agency to be settled empirically (or technologically). Given AUP there are no “future proof” constraints on the strangeness of posthuman agents. -/- In Posthuman Life I defended (...)
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  12.  3
    Soul machine: the invention of the modern mind.George Makari - 2015 - New York: W.W. Norton & Company.
    A brilliant and comprehensive history of the creation of the modern Western mind. Soul Machine takes us back to the origins of modernity, a time when a crisis in religious authority and the scientific revolution led to searching questions about the nature of human inner life. This is the story of how a new concept—the mind—emerged as a potential solution, one that was part soul and part machine, but fully neither. In this groundbreaking work, award-winning historian George Makari (...)
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  13. Machine generated contents note: Introduction1. The pre-socratic philosophers: Sixth and fifth centuries B.c.E. Thales / anaximander / anaximenes / Pythagoras / xenophanes / Heraclitus / parmenides / Zeno / empedocles / anaxagoras / leucippus and democritus 2. the athenian period: Fifth and fourth centuries B.c.E. The sophists: Protagoras, gorgias, thrasymachus, callicles and critias / socrates / Plato / Aristotle 3. the hellenistic and Roman periods: Fourth century B.c.E through fourth century C.e. Epicureanism / stoicism / skepticism / neoPlatonism 4. medieval and renaissance philosophy: Fifth through fifteenth centuries saint Augustine / the encyclopediasts / John scotus eriugena / saint Anselm / muslim and jewish philosophies: Averroës, Maimonides / the problem of faith and reason / the problem of the universals / saint Thomas Aquinas / William of ockham / renaissance philosophers 5. continental rationalism and british empiricism: The seventeenth and eighteenth centuries Descartes. [REVIEW]Farewell to the Twentieth Century: Nussbaum Glossary of Philosophical Terms Selected Bibliography Index - 2009 - In Donald Palmer (ed.), Looking at philosophy: the unbearable heaviness of philosophy made lighter. New York: McGraw-Hill.
     
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  14.  5
    Automated reasoning about machines.Andrew Gelsey - 1995 - Artificial Intelligence 74 (1):1-53.
  15.  53
    Machines and moral reasoning.Thomas M. Powers - 2009 - Philosophy Now 72:15-16.
  16.  11
    Recursive reasoning-based training-time adversarial machine learning.Yizhou Chen, Zhongxiang Dai, Haibin Yu, Bryan Kian Hsiang Low & Teck-Hua Ho - 2023 - Artificial Intelligence 315 (C):103837.
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  17.  17
    Mind, Machine, and Metaphor: An Essay on Artificial Intelligence and Legal Reasoning.Laurence Goldstein - 1995 - Philosophical Books 36 (2):134-136.
  18.  51
    Prototyping N-reasons: a computer mediated ethics machine.P. A. Danielson - 2011 - In M. Anderson S. Anderson (ed.), Machine Ethics. Cambridge Univ. Press. pp. 9.
  19.  34
    Should Moral Machines be Banned? A Commentary on van Wynsberghe and Robbins “Critiquing the Reasons for Making Artificial Moral Agents”.Bartek Chomanski - 2020 - Science and Engineering Ethics 26 (6):3469-3481.
    In a stimulating recent article for this journal (van Wynsberghe and Robbins in Sci Eng Ethics 25(3):719–735, 2019), Aimee van Wynsberghe and Scott Robbins mount a serious critique of a number of reasons advanced in favor of building artificial moral agents (AMAs). In light of their critique, vW&R make two recommendations: they advocate a moratorium on the commercialization of AMAs and suggest that the argumentative burden is now shifted onto the proponents of AMAs to come up with new reasons for (...)
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  20. Machine generated contents note: Introduction1. The pre-socratic philosophers: Sixth and fifth centuries B.c.E. Thales / anaximander / anaximenes / Pythagoras / xenophanes / Heraclitus / parmenides / Zeno / empedocles / anaxagoras / leucippus and democritus 2. the athenian period: Fifth and fourth centuries B.c.E. The sophists: Protagoras, gorgias, thrasymachus, callicles and critias / socrates / Plato / Aristotle 3. the hellenistic and Roman periods: Fourth century B.c.E through fourth century C.e. Epicureanism / stoicism / skepticism / neoPlatonism 4. medieval and renaissance philosophy: Fifth through fifteenth centuries saint Augustine / the encyclopediasts / John scotus eriugena / saint Anselm / muslim and jewish philosophies: Averroës, Maimonides / the problem of faith and reason / the problem of the universals / saint Thomas Aquinas / William of ockham / renaissance philosophers 5. continental rationalism and british empiricism: The seventeenth and eighteenth centuries Descartes. [REVIEW]Farewell to the Twentieth Century: Nussbaum Glossary of Philosophical Terms Selected Bibliography Index - 2009 - In Donald Palmer (ed.), Looking at philosophy: the unbearable heaviness of philosophy made lighter. New York: McGraw-Hill.
     
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  21. Machine generated contents note: Introduction1. The pre-socratic philosophers: Sixth and fifth centuries B.c.E. Thales / anaximander / anaximenes / Pythagoras / xenophanes / Heraclitus / parmenides / Zeno / empedocles / anaxagoras / leucippus and democritus 2. the athenian period: Fifth and fourth centuries B.c.E. The sophists: Protagoras, gorgias, thrasymachus, callicles and critias / socrates / Plato / Aristotle 3. the hellenistic and Roman periods: Fourth century B.c.E through fourth century C.e. Epicureanism / stoicism / skepticism / neoPlatonism 4. medieval and renaissance philosophy: Fifth through fifteenth centuries saint Augustine / the encyclopediasts / John scotus eriugena / saint Anselm / muslim and jewish philosophies: Averroës, Maimonides / the problem of faith and reason / the problem of the universals / saint Thomas Aquinas / William of ockham / renaissance philosophers 5. continental rationalism and british empiricism: The seventeenth and eighteenth centuries Descartes. [REVIEW]Farewell to the Twentieth Century: Nussbaum Glossary of Philosophical Terms Selected Bibliography Index - 2009 - In Donald Palmer (ed.), Looking at philosophy: the unbearable heaviness of philosophy made lighter. New York: McGraw-Hill.
     
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  22. Machine generated contents note: Introduction1. The pre-socratic philosophers: Sixth and fifth centuries B.c.E. Thales / anaximander / anaximenes / Pythagoras / xenophanes / Heraclitus / parmenides / Zeno / empedocles / anaxagoras / leucippus and democritus 2. the athenian period: Fifth and fourth centuries B.c.E. The sophists: Protagoras, gorgias, thrasymachus, callicles and critias / socrates / Plato / Aristotle 3. the hellenistic and Roman periods: Fourth century B.c.E through fourth century C.e. Epicureanism / stoicism / skepticism / neoPlatonism 4. medieval and renaissance philosophy: Fifth through fifteenth centuries saint Augustine / the encyclopediasts / John scotus eriugena / saint Anselm / muslim and jewish philosophies: Averroës, Maimonides / the problem of faith and reason / the problem of the universals / saint Thomas Aquinas / William of ockham / renaissance philosophers 5. continental rationalism and british empiricism: The seventeenth and eighteenth centuries Descartes. [REVIEW]Farewell to the Twentieth Century: Nussbaum Glossary of Philosophical Terms Selected Bibliography Index - 2009 - In Donald Palmer (ed.), Looking at philosophy: the unbearable heaviness of philosophy made lighter. New York: McGraw-Hill.
     
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  23.  43
    Human-oriented and machine-oriented reasoning: Remarks on some problems in the history of Automated Theorem Proving. [REVIEW]Furio Di Paola - 1988 - AI and Society 2 (2):121-131.
    Examples in the history of Automated Theorem Proving are given, in order to show that even a seemingly ‘mechanical’ activity, such as deductive inference drawing, involves special cultural features and tacit knowledge. Mechanisation of reasoning is thus regarded as a complex undertaking in ‘cultural pruning’ of human-oriented reasoning. Sociological counterparts of this passage from human- to machine-oriented reasoning are discussed, by focusing on problems of man-machine interaction in the area of computer-assisted proof processing.
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  24.  70
    Designing a machine to learn about the ethics of robotics: the N-reasons platform. [REVIEW]Peter Danielson - 2010 - Ethics and Information Technology 12 (3):251-261.
    We can learn about human ethics from machines. We discuss the design of a working machine for making ethical decisions, the N-Reasons platform, applied to the ethics of robots. This N-Reasons platform builds on web based surveys and experiments, to enable participants to make better ethical decisions. Their decisions are better than our existing surveys in three ways. First, they are social decisions supported by reasons. Second, these results are based on weaker premises, as no exogenous expertise (aside from (...)
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  25.  19
    Programming Machine Ethics.Luís Moniz Pereira & Ari Saptawijaya - 2016 - Cham: Springer Verlag. Edited by Ari Saptawijaya.
    Source: "This book addresses the fundamentals of machine ethics. It discusses abilities required for ethical machine reasoning and the programming features that enable them. It connects ethics, psychological ethical processes, and machine implemented procedures. From a technical point of view, the book uses logic programming and evolutionary game theory to model and link the individual and collective moral realms. It also reports on the results of experiments performed using several model implementations. Opening specific and promising inroads (...)
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  26. Moral Machines: Teaching Robots Right From Wrong.Wendell Wallach & Colin Allen - 2008 - New York, US: Oxford University Press.
    Computers are already approving financial transactions, controlling electrical supplies, and driving trains. Soon, service robots will be taking care of the elderly in their homes, and military robots will have their own targeting and firing protocols. Colin Allen and Wendell Wallach argue that as robots take on more and more responsibility, they must be programmed with moral decision-making abilities, for our own safety. Taking a fast paced tour through the latest thinking about philosophical ethics and artificial intelligence, the authors argue (...)
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  27. The Universal Thinking Machine, Or on the the Genesis of Schematized Reasoning in the 17th Century in Scientific Knowledge Socialized.S. Kramer-Friedrich - 1988 - Boston Studies in the Philosophy of Science 108:179-191.
  28. Death and the machine: From Jules Verne to Derrida and beyond: A critique of Jules Vernian reason.Peter Kemp & Paula Hostrup-Jessen - 1984 - Philosophy and Social Criticism 10 (2):75-96.
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  29.  9
    Understanding the What and When of Analogical Reasoning Across Analogy Formats: An Eye‐Tracking and Machine Learning Approach.Jean-Pierre Thibaut, Yannick Glady & Robert M. French - 2022 - Cognitive Science 46 (11):e13208.
    Starting with the hypothesis that analogical reasoning consists of a search of semantic space, we used eye-tracking to study the time course of information integration in adults in various formats of analogies. The two main questions we asked were whether adults would follow the same search strategies for different types of analogical problems and levels of complexity and how they would adapt their search to the difficulty of the task. We compared these results to predictions from the literature. (...) learning techniques, in particular support vector machines (SVMs), processed the data to find out which sets of transitions best predicted the output of a trial (error or correct) or the type of analogy (simple or complex). Results revealed common search patterns, but with local adaptations to the specifics of each type of problem, both in terms of looking-time durations and the number and types of saccades. In general, participants organized their search around source-domain relations that they generalized to the target domain. However, somewhat surprisingly, over the course of the entire trial, their search included, not only semantically related distractors, but also unrelated distractors, depending on the difficulty of the trial. An SVM analysis revealed which types of transitions are able to discriminate between analogy tasks. We discuss these results in light of existing models of analogical reasoning. (shrink)
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  30. Why machines cannot be moral.Robert Sparrow - 2021 - AI and Society (3):685-693.
    The fact that real-world decisions made by artificial intelligences (AI) are often ethically loaded has led a number of authorities to advocate the development of “moral machines”. I argue that the project of building “ethics” “into” machines presupposes a flawed understanding of the nature of ethics. Drawing on the work of the Australian philosopher, Raimond Gaita, I argue that ethical dilemmas are problems for particular people and not (just) problems for everyone who faces a similar situation. Moreover, the force of (...)
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  31.  40
    Fairer machine learning in the real world: Mitigating discrimination without collecting sensitive data.Reuben Binns & Michael Veale - 2017 - Big Data and Society 4 (2).
    Decisions based on algorithmic, machine learning models can be unfair, reproducing biases in historical data used to train them. While computational techniques are emerging to address aspects of these concerns through communities such as discrimination-aware data mining and fairness, accountability and transparency machine learning, their practical implementation faces real-world challenges. For legal, institutional or commercial reasons, organisations might not hold the data on sensitive attributes such as gender, ethnicity, sexuality or disability needed to diagnose and mitigate emergent indirect (...)
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  32. Machine models for cognitive science.Raymond J. Nelson - 1987 - Philosophy of Science 54 (September):391-408.
    Introduction. During the past two decades philosophers of psychology have considered a large variety of computational models for philosophy of mind and more recently for cognitive science. Among the suggested models are computer programs, Turing machines, pushdown automata, linear bounded automata, finite state automata and sequential machines. Many philosophers have found finite state automata models to be the most appealing, for various reasons, although there has been no shortage of defenders of programs and Turing machines. A paper by Arthur Burks (...)
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  33.  32
    Machine learning in medicine: should the pursuit of enhanced interpretability be abandoned?Chang Ho Yoon, Robert Torrance & Naomi Scheinerman - 2022 - Journal of Medical Ethics 48 (9):581-585.
    We argue why interpretability should have primacy alongside empiricism for several reasons: first, if machine learning models are beginning to render some of the high-risk healthcare decisions instead of clinicians, these models pose a novel medicolegal and ethical frontier that is incompletely addressed by current methods of appraising medical interventions like pharmacological therapies; second, a number of judicial precedents underpinning medical liability and negligence are compromised when ‘autonomous’ ML recommendations are considered to be en par with human instruction in (...)
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  34. The Experience Machine Deconstructed.H. E. Baber - 2008 - Philosophy in the Contemporary World 15 (1):133-138.
    Nozick’s Experience Machine thought experiment is generally taken to make a compelling, if not conclusive, case against philosophical hedonism. I argue that it does not and, indeed, that regardless of the results, it cannot provide any reason to accept or reject either hedonism or any other philosophical account of wellbeing since it presupposes preferentism, the desire-satisfaction account ofwellbeing. Preferentists cannot take any comfort from the results of such thought experiments because they assume preferentism and therefore cannot establish it. Neither (...)
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  35. Building machines that learn and think about morality.Christopher Burr & Geoff Keeling - 2018 - In Christopher Burr & Geoff Keeling (eds.), Proceedings of the Convention of the Society for the Study of Artificial Intelligence and Simulation of Behaviour (AISB 2018). Society for the Study of Artificial Intelligence and Simulation of Behaviour.
    Lake et al. propose three criteria which, they argue, will bring artificial intelligence (AI) systems closer to human cognitive abilities. In this paper, we explore the application of these criteria to a particular domain of human cognition: our capacity for moral reasoning. In doing so, we explore a set of considerations relevant to the development of AI moral decision-making. Our main focus is on the relation between dual-process accounts of moral reasoning and model-free/model-based forms of machine learning. (...)
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  36. Clinical applications of machine learning algorithms: beyond the black box.David S. Watson, Jenny Krutzinna, Ian N. Bruce, Christopher E. M. Griffiths, Iain B. McInnes, Michael R. Barnes & Luciano Floridi - 2019 - British Medical Journal 364:I886.
    Machine learning algorithms may radically improve our ability to diagnose and treat disease. For moral, legal, and scientific reasons, it is essential that doctors and patients be able to understand and explain the predictions of these models. Scalable, customisable, and ethical solutions can be achieved by working together with relevant stakeholders, including patients, data scientists, and policy makers.
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  37. Machine Intentionality, the Moral Status of Machines, and the Composition Problem.David Leech Anderson - 2012 - In Vincent C. Müller (ed.), The Philosophy & Theory of Artificial Intelligence. Springer. pp. 312-333.
    According to the most popular theories of intentionality, a family of theories we will refer to as “functional intentionality,” a machine can have genuine intentional states so long as it has functionally characterizable mental states that are causally hooked up to the world in the right way. This paper considers a detailed description of a robot that seems to meet the conditions of functional intentionality, but which falls victim to what I call “the composition problem.” One obvious way to (...)
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  38.  5
    Writing a Moral Code: Algorithms for Ethical Reasoning by Humans and Machines.James F. McGrath & Ankur Gupta - unknown
    The moral and ethical challenges of living in community pertain not only to the intersection of human beings one with another, but also our interactions with our machine creations. This article explores the philosophical and theological framework for reasoning and decision-making through the lens of science fiction, religion, and artificial intelligence (both real and imagined). In comparing the programming of autonomous machines with human ethical deliberation, we discover that both depend on a concrete ordering of priorities derived from (...)
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  39. Incremental Machine Ethics.Thomas M. Powers - 2011 - IEEE Robotics and Automation 18 (1):51-58.
    Approaches to programming ethical behavior for computer systems face challenges that are both technical and philosophical in nature. In response, an incrementalist account of machine ethics is developed: a successive adaptation of programmed constraints to new, morally relevant abilities in computers. This approach allows progress under conditions of limited knowledge in both ethics and computer systems engineering and suggests reasons that we can circumvent broader philosophical questions about computer intelligence and autonomy.
     
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  40.  20
    Machine and human agents in moral dilemmas: automation–autonomic and EEG effect.Federico Cassioli, Laura Angioletti & Michela Balconi - forthcoming - AI and Society:1-13.
    Automation is inherently tied to ethical challenges because of its potential involvement in morally loaded decisions. In the present research, participants (n = 34) took part in a moral multi-trial dilemma-based task where the agent (human vs. machine) and the behavior (action vs. inaction) factors were randomized. Self-report measures, in terms of morality, consciousness, responsibility, intentionality, and emotional impact evaluation were gathered, together with electroencephalography (delta, theta, beta, upper and lower alpha, and gamma powers) and peripheral autonomic (electrodermal activity, (...)
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  41. Machine learning and the foundations of inductive inference.Francesco Bergadano - 1993 - Minds and Machines 3 (1):31-51.
    The problem of valid induction could be stated as follows: are we justified in accepting a given hypothesis on the basis of observations that frequently confirm it? The present paper argues that this question is relevant for the understanding of Machine Learning, but insufficient. Recent research in inductive reasoning has prompted another, more fundamental question: there is not just one given rule to be tested, there are a large number of possible rules, and many of these are somehow (...)
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  42.  24
    Machine learning in healthcare and the methodological priority of epistemology over ethics.Thomas Grote - forthcoming - Inquiry: An Interdisciplinary Journal of Philosophy.
    This paper develops an account of how the implementation of ML models into healthcare settings requires revising the methodological apparatus of philosophical bioethics. On this account, ML models are cognitive interventions that provide decision-support to physicians and patients. Due to reliability issues, opaque reasoning processes, and information asymmetries, ML models pose inferential problems for them. These inferential problems lay the grounds for many ethical problems that currently claim centre-stage in the bioethical debate. Accordingly, this paper argues that the best (...)
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  43. The Moral Standing of Machines: Towards a Relational and Non-Cartesian Moral Hermeneutics.Mark Coeckelbergh - 2014 - Philosophy and Technology 27 (1):61-77.
    Should we give moral standing to machines? In this paper, I explore the implications of a relational approach to moral standing for thinking about machines, in particular autonomous, intelligent robots. I show how my version of this approach, which focuses on moral relations and on the conditions of possibility of moral status ascription, provides a way to take critical distance from what I call the “standard” approach to thinking about moral status and moral standing, which is based on properties. It (...)
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  44.  8
    Programming Machine Ethics.Luís Moniz Pereira - 2016 - Cham: Imprint: Springer. Edited by Ari Saptawijaya.
    This book addresses the fundamentals of machine ethics. It discusses abilities required for ethical machine reasoning and the programming features that enable them. It connects ethics, psychological ethical processes, and machine implemented procedures. From a technical point of view, the book uses logic programming and evolutionary game theory to model and link the individual and collective moral realms. It also reports on the results of experiments performed using several model implementations. Opening specific and promising inroads into (...)
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  45.  27
    Beyond Machines: Humans in Cyber Operations, Espionage, and Conflict.David Danks & Joseph H. Danks - unknown
    It is the height of banality to observe that people, not bullets, fight kinetic wars. The machinery of kinetic warfare is obviously relevant to the conduct of each particular act of warfare, but the reasons for, and meanings of, those acts depend critically on the fact that they are done by humans. Any attempt to understand warfare—its causes, strategies, legitimacy, dynamics, and resolutions—must incorporate humans as an intrinsic part, both descriptively and normatively. Humans from general staff to “boots on the (...)
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  46. Why Machines Will Never Rule the World: Artificial Intelligence without Fear.Jobst Landgrebe & Barry Smith - 2022 - Abingdon, England: Routledge.
    The book’s core argument is that an artificial intelligence that could equal or exceed human intelligence—sometimes called artificial general intelligence (AGI)—is for mathematical reasons impossible. It offers two specific reasons for this claim: Human intelligence is a capability of a complex dynamic system—the human brain and central nervous system. Systems of this sort cannot be modelled mathematically in a way that allows them to operate inside a computer. In supporting their claim, the authors, Jobst Landgrebe and Barry Smith, marshal evidence (...)
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  47.  43
    Time machines.John Earman & Christian Wüthrich - 2010 - In .
    Recent years have seen a growing consensus in the philosophical community that the grandfather paradox and similar logical puzzles do not preclude the possibility of time travel scenarios that utilize spacetimes containing closed timelike curves. At the same time, physicists, who for half a century acknowledged that the general theory of relativity is compatible with such spacetimes, have intensely studied the question whether the operation of a time machine would be admissible in the context of the same theory and (...)
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    From machine ethics to computational ethics.Samuel T. Segun - 2021 - AI and Society 36 (1):263-276.
    Research into the ethics of artificial intelligence is often categorized into two subareas—robot ethics and machine ethics. Many of the definitions and classifications of the subject matter of these subfields, as found in the literature, are conflated, which I seek to rectify. In this essay, I infer that using the term ‘machine ethics’ is too broad and glosses over issues that the term computational ethics best describes. I show that the subject of inquiry of computational ethics is of (...)
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    Machine wanting.Daniel W. McShea - 2013 - Studies in History and Philosophy of Science Part C: Studies in History and Philosophy of Biological and Biomedical Sciences 44 (4b):679-687.
    Wants, preferences, and cares are physical things or events, not ideas or propositions, and therefore no chain of pure logic can conclude with a want, preference, or care. It follows that no pure-logic machine will ever want, prefer, or care. And its behavior will never be driven in the way that deliberate human behavior is driven, in other words, it will not be motivated or goal directed. Therefore, if we want to simulate human-style interactions with the world, we will (...)
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  50. Minds, Machines, and Gödel: A Retrospect.J. R. Lucas - 1996 - In Raffaela Giovagnoli (ed.), Etica E Politica. Clarendon Press. pp. 1.
    In this paper Lucas comes back to Gödelian argument against Mecanism to clarify some points. First of all, he explains his use of Gödel’s theorem instead of Turing’s theorem, showing how Gödel’ theorem, but not Turing’s theorem, raises questions concerning truth and reasoning that bear on the nature of mind and how Turing’s theorem suggests that there is something that cannot be done by any computers but not that it can be done by human minds. He considers moreover how (...)
     
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