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  1. Causality: Models, Reasoning and Inference.Judea Pearl - 2000 - New York: Cambridge University Press.
    Causality offers the first comprehensive coverage of causal analysis in many sciences, including recent advances using graphical methods. Pearl presents a unified account of the probabilistic, manipulative, counterfactual and structural approaches to causation, and devises simple mathematical tools for analyzing the relationships between causal connections, statistical associations, actions and observations. The book will open the way for including causal analysis in the standard curriculum of statistics, artificial intelligence, business, epidemiology, social science and economics.
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  • The morality of freedom.J. Raz - 1988 - Revue Philosophique de la France Et de l'Etranger 178 (1):108-109.
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  • After virtue: a study in moral theory.Alasdair C. MacIntyre - 1981 - Notre Dame, Ind.: University of Notre Dame Press.
    This classic and controversial book examines the roots of the idea of virtue, diagnoses the reasons for its absence in modern life, and proposes a path for its recovery.
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  • Artificial Intelligence and Black‐Box Medical Decisions: Accuracy versus Explainability.Alex John London - 2019 - Hastings Center Report 49 (1):15-21.
    Although decision‐making algorithms are not new to medicine, the availability of vast stores of medical data, gains in computing power, and breakthroughs in machine learning are accelerating the pace of their development, expanding the range of questions they can address, and increasing their predictive power. In many cases, however, the most powerful machine learning techniques purchase diagnostic or predictive accuracy at the expense of our ability to access “the knowledge within the machine.” Without an explanation in terms of reasons or (...)
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  • AI4People—an ethical framework for a good AI society: opportunities, risks, principles, and recommendations.Luciano Floridi, Josh Cowls, Monica Beltrametti, Raja Chatila, Patrice Chazerand, Virginia Dignum, Christoph Luetge, Robert Madelin, Ugo Pagallo, Francesca Rossi, Burkhard Schafer, Peggy Valcke & Effy Vayena - 2018 - Minds and Machines 28 (4):689-707.
    This article reports the findings of AI4People, an Atomium—EISMD initiative designed to lay the foundations for a “Good AI Society”. We introduce the core opportunities and risks of AI for society; present a synthesis of five ethical principles that should undergird its development and adoption; and offer 20 concrete recommendations—to assess, to develop, to incentivise, and to support good AI—which in some cases may be undertaken directly by national or supranational policy makers, while in others may be led by other (...)
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  • Causation, Prediction, and Search.Peter Spirtes, Clark Glymour, Scheines N. & Richard - 1993 - Mit Press: Cambridge.
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  • No understanding without explanation.Michael Strevens - 2013 - Studies in History and Philosophy of Science Part A 44 (3):510-515.
    Scientific understanding, this paper argues, can be analyzed entirely in terms of a mental act of “grasping” and a notion of explanation. To understand why a phenomenon occurs is to grasp a correct explanation of the phenomenon. To understand a scientific theory is to be able to construct, or at least to grasp, a range of potential explanations in which that theory accounts for other phenomena. There is no route to scientific understanding, then, that does not go by way of (...)
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  • Transparency is Surveillance.C. Thi Nguyen - 2021 - Philosophy and Phenomenological Research 105 (2):331-361.
    In her BBC Reith Lectures on Trust, Onora O’Neill offers a short, but biting, criticism of transparency. People think that trust and transparency go together but in reality, says O'Neill, they are deeply opposed. Transparency forces people to conceal their actual reasons for action and invent different ones for public consumption. Transparency forces deception. I work out the details of her argument and worsen her conclusion. I focus on public transparency – that is, transparency to the public over expert domains. (...)
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  • Real patterns.Daniel C. Dennett - 1991 - Journal of Philosophy 88 (1):27-51.
    Are there really beliefs? Or are we learning (from neuroscience and psychology, presumably) that, strictly speaking, beliefs are figments of our imagination, items in a superceded ontology? Philosophers generally regard such ontological questions as admitting just two possible answers: either beliefs exist or they don't. There is no such state as quasi-existence; there are no stable doctrines of semi-realism. Beliefs must either be vindicated along with the viruses or banished along with the banshees. A bracing conviction prevails, then, to the (...)
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  • Intentional systems.Daniel C. Dennett - 1971 - Journal of Philosophy 68 (February):87-106.
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  • Is explainable artificial intelligence intrinsically valuable?Nathan Colaner - 2022 - AI and Society 37 (1):231-238.
    There is general consensus that explainable artificial intelligence is valuable, but there is significant divergence when we try to articulate why, exactly, it is desirable. This question must be distinguished from two other kinds of questions asked in the XAI literature that are sometimes asked and addressed simultaneously. The first and most obvious is the ‘how’ question—some version of: ‘how do we develop technical strategies to achieve XAI?’ Another question is specifying what kind of explanation is worth having in the (...)
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  • Autonomy and Personal History.John Christman - 1991 - Canadian Journal of Philosophy 21 (1):1 - 24.
    Virtually any appraisal of a person’s welfare, integrity, or moral status, as well as the moral and political theories built on such appraisals, will rely crucially on the presumption that her preferences and values are in some important sense her own. In particular, the nature and value of political freedom is intimately connected with the presupposition that actions one is left free to do flow from desires and values that are truly an expression of the ‘self-government’ of the agent. However, (...)
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  • Interventionism, control variables and causation in the qualitative world.John Campbell - 2008 - Philosophical Issues 18 (1):426-445.
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  • How the machine ‘thinks’: Understanding opacity in machine learning algorithms.Jenna Burrell - 2016 - Big Data and Society 3 (1):205395171562251.
    This article considers the issue of opacity as a problem for socially consequential mechanisms of classification and ranking, such as spam filters, credit card fraud detection, search engines, news trends, market segmentation and advertising, insurance or loan qualification, and credit scoring. These mechanisms of classification all frequently rely on computational algorithms, and in many cases on machine learning algorithms to do this work. In this article, I draw a distinction between three forms of opacity: opacity as intentional corporate or state (...)
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  • Interpretability and Unification.Adrian Erasmus & Tyler D. P. Brunet - 2022 - Philosophy and Technology 35 (2):1-6.
    In a recent reply to our article, “What is Interpretability?,” Prasetya argues against our position that artificial neural networks are explainable. It is claimed that our indefeasibility thesis—that adding complexity to an explanation of a phenomenon does not make the phenomenon any less explainable—is false. More precisely, Prasetya argues that unificationist explanations are defeasible to increasing complexity, and thus, we may not be able to provide such explanations of highly complex AI models. The reply highlights an important lacuna in our (...)
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  • Reflection, planning, and temporally extended agency.Michael E. Bratman - 2000 - Philosophical Review 109 (1):35-61.
    We are purposive agents; but we—adult humans in a broadly modern world—are more than that. We are reflective about our motivation. We form prior plans and policies that organize our activity over time. And we see ourselves as agents who persist over time and who begin, develop, and then complete temporally extended activities and projects. Any reasonably complete theory of human action will need in some way to advert to this trio of features—to our reflectiveness, our planfulness, and our conception (...)
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  • The Explanatory Component of Moral Responsibility.Gunnar Björnsson & Karl Persson - 2012 - Noûs 46 (2):326-354.
    In this paper, we do three things. First, we put forth a novel hypothesis about judgments of moral responsibility according to which such judgments are a species of explanatory judgments. Second, we argue that this hypothesis explains both some general features of everyday thinking about responsibility and the appeal of skeptical arguments against moral responsibility. Finally, we argue that, if correct, the hypothesis provides a defense against these skeptical arguments.
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  • A Unified Empirical Account of Responsibility Judgments.Gunnar Björnsson & Karl Persson - 2012 - Philosophy and Phenomenological Research 87 (3):611-639.
    Skeptical worries about moral responsibility seem to be widely appreciated and deeply felt. To address these worries—if nothing else to show that they are mistaken—theories of moral responsibility need to relate to whatever concept of responsibility underlies the worries. Unfortunately, the nature of that concept has proved hard to pin down. Not only do philosophers have conflicting intuitions; numerous recent empirical studies have suggested that both prosaic responsibility judgments and incompatibilist intuitions among the folk are influenced by a number of (...)
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  • From Responsibility to Reason-Giving Explainable Artificial Intelligence.Kevin Baum, Susanne Mantel, Timo Speith & Eva Schmidt - 2022 - Philosophy and Technology 35 (1):1-30.
    We argue that explainable artificial intelligence (XAI), specifically reason-giving XAI, often constitutes the most suitable way of ensuring that someone can properly be held responsible for decisions that are based on the outputs of artificial intelligent (AI) systems. We first show that, to close moral responsibility gaps (Matthias 2004), often a human in the loop is needed who is directly responsible for particular AI-supported decisions. Second, we appeal to the epistemic condition on moral responsibility to argue that, in order to (...)
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  • Autonomy and the subjective character of experience.Kim Atkins - 2000 - Journal of Applied Philosophy 17 (1):71–79.
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  • Autonomy and the Subjective Character of Experience.Kim Atkins - 2003 - Journal of Applied Philosophy 17 (1):71-79.
    Books reviewed:Stephen R. L. Clark, The Political – Biology, Ethics and PoliticsTorbjörn Tannsjö, Coercive CareDavid Carr and Jan Steutel, Virture Ethics and Moral EducationLaura Westra and Patricia Werhane, The Business of Consumption: Environmental Ethics and the Global CommunityDavid Conway, Free‐Market Feminism.
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  • Algorithmic and human decision making: for a double standard of transparency.Mario Günther & Atoosa Kasirzadeh - 2022 - AI and Society 37 (1):375-381.
    Should decision-making algorithms be held to higher standards of transparency than human beings? The way we answer this question directly impacts what we demand from explainable algorithms, how we govern them via regulatory proposals, and how explainable algorithms may help resolve the social problems associated with decision making supported by artificial intelligence. Some argue that algorithms and humans should be held to the same standards of transparency and that a double standard of transparency is hardly justified. We give two arguments (...)
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  • The philosophy of simulation: hot new issues or same old stew?Roman Frigg & Julian Reiss - 2009 - Synthese 169 (3):593-613.
    Computer simulations are an exciting tool that plays important roles in many scientific disciplines. This has attracted the attention of a number of philosophers of science. The main tenor in this literature is that computer simulations not only constitute interesting and powerful new science, but that they also raise a host of new philosophical issues. The protagonists in this debate claim no less than that simulations call into question our philosophical understanding of scientific ontology, the epistemology and semantics of models (...)
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  • Making AI Intelligible: Philosophical Foundations.Herman Cappelen & Josh Dever - 2021 - New York, USA: Oxford University Press.
    Can humans and artificial intelligences share concepts and communicate? Making AI Intelligible shows that philosophical work on the metaphysics of meaning can help answer these questions. Herman Cappelen and Josh Dever use the externalist tradition in philosophy to create models of how AIs and humans can understand each other. In doing so, they illustrate ways in which that philosophical tradition can be improved. The questions addressed in the book are not only theoretically interesting, but the answers have pressing practical implications. (...)
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  • Planning, Time, and Self-Governance: Essays in Practical Rationality.Michael Bratman - 2018 - New York, NY: Oup Usa.
    Our capacity for planning agency is central to our human lives. These essays aim both to deepen our understanding of basic norms that guide our plan-infused thinking and to defend their status as norms of practical rationality. This defense appeals both to forms of pragmatic support and to the ways in which these norms track conditions of a planning agent's self-governance, both at a time and over time.
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  • Grounding for the Metaphysics of Morals: With on a Supposed Right to Lie Because of Philanthropic Concerns.Immanuel Kant - 1992 - Hackett Publishing Company.
    This expanded edition of James Ellington’s preeminent translation includes Ellington’s new translation of Kant’s essay Of a Supposed Right to Lie Because of Philanthropic Concerns in which Kant replies to one of the standard objections to his moral theory as presented in the main text: that it requires us to tell the truth even in the face of disastrous consequences.
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  • Transparency in Algorithmic and Human Decision-Making: Is There a Double Standard?John Zerilli, Alistair Knott, James Maclaurin & Colin Gavaghan - 2018 - Philosophy and Technology 32 (4):661-683.
    We are sceptical of concerns over the opacity of algorithmic decision tools. While transparency and explainability are certainly important desiderata in algorithmic governance, we worry that automated decision-making is being held to an unrealistically high standard, possibly owing to an unrealistically high estimate of the degree of transparency attainable from human decision-makers. In this paper, we review evidence demonstrating that much human decision-making is fraught with transparency problems, show in what respects AI fares little worse or better and argue that (...)
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  • Making things happen: a theory of causal explanation.James F. Woodward - 2003 - New York: Oxford University Press.
    Woodward's long awaited book is an attempt to construct a comprehensive account of causation explanation that applies to a wide variety of causal and explanatory claims in different areas of science and everyday life. The book engages some of the relevant literature from other disciplines, as Woodward weaves together examples, counterexamples, criticisms, defenses, objections, and replies into a convincing defense of the core of his theory, which is that we can analyze causation by appeal to the notion of manipulation.
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  • Artificial intelligence and the value of transparency.Joel Walmsley - 2021 - AI and Society 36 (2):585-595.
    Some recent developments in Artificial Intelligence—especially the use of machine learning systems, trained on big data sets and deployed in socially significant and ethically weighty contexts—have led to a number of calls for “transparency”. This paper explores the epistemological and ethical dimensions of that concept, as well as surveying and taxonomising the variety of ways in which it has been invoked in recent discussions. Whilst “outward” forms of transparency may be straightforwardly achieved, what I call “functional” transparency about the inner (...)
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  • The chinese room argument reconsidered: Essentialism, indeterminacy, and strong AI. [REVIEW]Jerome C. Wakefield - 2003 - Minds and Machines 13 (2):285-319.
    I argue that John Searle's (1980) influential Chinese room argument (CRA) against computationalism and strong AI survives existing objections, including Block's (1998) internalized systems reply, Fodor's (1991b) deviant causal chain reply, and Hauser's (1997) unconscious content reply. However, a new ``essentialist'' reply I construct shows that the CRA as presented by Searle is an unsound argument that relies on a question-begging appeal to intuition. My diagnosis of the CRA relies on an interpretation of computationalism as a scientific theory about the (...)
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  • Agency, Teleological Control and Robust Causation.Marius Usher - 2018 - Philosophy and Phenomenological Research 100 (2):302-324.
    Philosophy and Phenomenological Research, EarlyView.
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  • The Pragmatic Turn in Explainable Artificial Intelligence (XAI).Andrés Páez - 2019 - Minds and Machines 29 (3):441-459.
    In this paper I argue that the search for explainable models and interpretable decisions in AI must be reformulated in terms of the broader project of offering a pragmatic and naturalistic account of understanding in AI. Intuitively, the purpose of providing an explanation of a model or a decision is to make it understandable to its stakeholders. But without a previous grasp of what it means to say that an agent understands a model or a decision, the explanatory strategies will (...)
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  • The Pragmatic Turn in Explainable Artificial Intelligence.Andrés Páez - 2019 - Minds and Machines 29 (3):441-459.
    In this paper I argue that the search for explainable models and interpretable decisions in AI must be reformulated in terms of the broader project of offering a pragmatic and naturalistic account of understanding in AI. Intuitively, the purpose of providing an explanation of a model or a decision is to make it understandable to its stakeholders. But without a previous grasp of what it means to say that an agent understands a model or a decision, the explanatory strategies will (...)
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  • Physical causation and difference-making.Alyssa Ney - 2009 - British Journal for the Philosophy of Science 60 (4):737-764.
    This paper examines the relationship between physical theories of causation and theories of difference-making. It is plausible to think that such theories are compatible with one another as they are aimed at different targets: the former, an empirical account of actual causal relations; the latter, an account that will capture the truth of most of our ordinary causal claims. The question then becomes: what is the relationship between physical causation and difference-making? Is one kind of causal fact more fundamental than (...)
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  • The knowledge level.Allen Newell - 1982 - Artificial Intelligence 18 (1):81-132.
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  • The Ethics of Organ Donor Registration Policies: Nudges and Respect for Autonomy.Douglas MacKay & Alexandra Robinson - 2016 - American Journal of Bioethics 16 (11):3-12.
    Governments must determine the legal procedures by which their residents are registered, or can register, as organ donors. Provided that governments recognize that people have a right to determine what happens to their organs after they die, there are four feasible options to choose from: opt-in, opt-out, mandated active choice, and voluntary active choice. We investigate the ethics of these policies' use of nudges to affect organ donor registration rates. We argue that the use of nudges in this context is (...)
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  • The Instrumental Value of Explanations.Tania Lombrozo - 2011 - Philosophy Compass 6 (8):539-551.
    Scientific and ‘intuitive’ or ‘folk’ theories are typically characterized as serving three critical functions: prediction, explanation, and control. While prediction and control have clear instrumental value, the value of explanation is less transparent. This paper reviews an emerging body of research from the cognitive sciences suggesting that the process of seeking, generating, and evaluating explanations in fact contributes to future prediction and control, albeit indirectly by facilitating the discovery and confirmation of instrumentally valuable theories. Theoretical and empirical considerations also suggest (...)
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  • What do we want from Explainable Artificial Intelligence (XAI)? – A stakeholder perspective on XAI and a conceptual model guiding interdisciplinary XAI research.Markus Langer, Daniel Oster, Timo Speith, Lena Kästner, Kevin Baum, Holger Hermanns, Eva Schmidt & Andreas Sesing - 2021 - Artificial Intelligence 296 (C):103473.
    Previous research in Explainable Artificial Intelligence (XAI) suggests that a main aim of explainability approaches is to satisfy specific interests, goals, expectations, needs, and demands regarding artificial systems (we call these “stakeholders' desiderata”) in a variety of contexts. However, the literature on XAI is vast, spreads out across multiple largely disconnected disciplines, and it often remains unclear how explainability approaches are supposed to achieve the goal of satisfying stakeholders' desiderata. This paper discusses the main classes of stakeholders calling for explainability (...)
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  • Zombies in the Loop? Humans Trust Untrustworthy AI-Advisors for Ethical Decisions.Sebastian Krügel, Andreas Ostermaier & Matthias Uhl - 2022 - Philosophy and Technology 35 (1):1-37.
    Departing from the claim that AI needs to be trustworthy, we find that ethical advice from an AI-powered algorithm is trusted even when its users know nothing about its training data and when they learn information about it that warrants distrust. We conducted online experiments where the subjects took the role of decision-makers who received advice from an algorithm on how to deal with an ethical dilemma. We manipulated the information about the algorithm and studied its influence. Our findings suggest (...)
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  • People Prefer Moral Discretion to Algorithms: Algorithm Aversion Beyond Intransparency.Johanna Jauernig, Matthias Uhl & Gari Walkowitz - 2022 - Philosophy and Technology 35 (1):1-25.
    We explore aversion to the use of algorithms in moral decision-making. So far, this aversion has been explained mainly by the fear of opaque decisions that are potentially biased. Using incentivized experiments, we study which role the desire for human discretion in moral decision-making plays. This seems justified in light of evidence suggesting that people might not doubt the quality of algorithmic decisions, but still reject them. In our first study, we found that people prefer humans with decision-making discretion to (...)
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  • Portable Causal Dependence: A Tale of Consilience.Christopher Hitchcock - 2012 - Philosophy of Science 79 (5):942-951.
    This article describes research pursued by members of the McDonnell Collaborative on Causal Learning. A number of members independently converged on a similar idea: one of the central functions served by claims of actual causation is to highlight patterns of dependence that are highly portable into novel contexts. I describe in detail how this idea emerged in my own work and also in that of the psychologist Tania Lombrozo. In addition, I use the occasion to reflect on the nature of (...)
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  • Authenticity-sensitive preferentism and educating for well-being and autonomy.Ishtiyaque Haji & Stefaan E. Cuypers - 2008 - Journal of Philosophy of Education 42 (1):85-106.
    An overarching aim of education is the promotion of children's personal well-being. Liberal educationalists also support the promotion of children's personal autonomy as a central educational aim. On some views, such as John White's, these two goals—furthering well-being and cultivating autonomy—can come apart. Our primary aim in this paper is to argue for a species of a stronger view: assuming preferentism as our axiology, we suggest that there is an essential association between the autonomy of our springs of action, such (...)
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  • Authenticity-Sensitive Preferentism and Educating for Well-Being and Autonomy.Ishtiyaque Haji & Stefaan E. Cuypers - 2008 - Journal of Philosophy of Education 42 (1):85-106.
    An overarching aim of education is the promotion of children’s personal well-being. Liberal educationalists also support the promotion of children’s personal autonomy as a central educational aim. On some views, such as John White’s, these two goals—furthering well-being and cultivating autonomy—can come apart. Our primary aim in this paper is to argue for a species of a stronger view: assuming preferentism as our axiology, we suggest that there is an essential association between the autonomy of our springs of action, such (...)
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  • Causal Responsibility and Robust Causation.Guy Grinfeld, David Lagnado, Tobias Gerstenberg, James F. Woodward & Marius Usher - 2020 - Frontiers in Psychology 11:1069.
    How do people judge the degree of causal responsibility that an agent has for the outcomes of her actions? We show that a relatively unexplored factor -- the robustness of the causal chain linking the agent’s action and the outcome -- influences judgments of causal responsibility of the agent. In three experiments, we vary robustness by manipulating the number of background circumstances under which the action causes the effect, and find that causal responsibility judgments increase with robustness. In the first (...)
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  • Explanation as orgasm.Alison Gopnik - 1998 - Minds and Machines 8 (1):101-118.
    I argue that explanation should be thought of as the phenomenological mark of the operation of a particular kind of cognitive system, the theory-formation system. The theory-formation system operates most clearly in children and scientists but is also part of our everyday cognition. The system is devoted to uncovering the underlying causal structure of the world. Since this process often involves active intervention in the world, in the case of systematic experiment in scientists, and play in children, the cognitive system (...)
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  • The philosophy of simulation: hot new issues or same old stew?Roman Frigg & Julian Reiss - 2009 - Synthese 169 (3):593-613.
    Computer simulations are an exciting tool that plays important roles in many scientific disciplines. This has attracted the attention of a number of philosophers of science. The main tenor in this literature is that computer simulations not only constitute interesting and powerful new science , but that they also raise a host of new philosophical issues. The protagonists in this debate claim no less than that simulations call into question our philosophical understanding of scientific ontology, the epistemology and semantics of (...)
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  • What is Interpretability?Adrian Erasmus, Tyler D. P. Brunet & Eyal Fisher - 2021 - Philosophy and Technology 34:833–862.
    We argue that artificial networks are explainable and offer a novel theory of interpretability. Two sets of conceptual questions are prominent in theoretical engagements with artificial neural networks, especially in the context of medical artificial intelligence: Are networks explainable, and if so, what does it mean to explain the output of a network? And what does it mean for a network to be interpretable? We argue that accounts of “explanation” tailored specifically to neural networks have ineffectively reinvented the wheel. In (...)
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  • How Physics Makes Us Free.Jenann Ismael - 2016 - , US: Oxford University Press USA.
    In 1687 Isaac Newton ushered in a new scientific era in which laws of nature could be used to predict the movements of matter with almost perfect precision. Newton's physics also posed a profound challenge to our self-understanding, however, for the very same laws that keep airplanes in the air and rivers flowing downhill tell us that it is in principle possible to predict what each of us will do every second of our entire lives, given the early conditions of (...)
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  • A Question of Trust: The Bbc Reith Lectures 2002.Onora O'Neill - 2002 - Cambridge University Press.
    We say we can no longer trust our public services, institutions or the people who run them. The professionals we have to rely on - politicians, doctors, scientists, businessmen and many others - are treated with suspicion. Their word is doubted, their motives questioned. Whether real or perceived, this crisis of trust has a debilitating impact on society and democracy. Can trust be restored by making people and institutions more accountable? Or do complex systems of accountability and control themselves damage (...)
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  • Autonomy, consent and the law.Sheila McLean - 2010 - New York, N.Y.: Routledge-Cavendish.
    From Hippocrates to paternalism to autonomy : the new hegemony -- From autonomy to consent -- Consent, autonomy, and the law -- Autonomy at the end of life -- Autonomy and pregnancy -- Autonomy and genetic information -- Autonomy and organ transplantation -- Autonomy, consent, and the law.
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