Results for 'Machine Intelligence'

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  1.  5
    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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  2.  53
    Situating Machine Intelligence Within the Cognitive Ecology of the Internet.Paul Smart - 2017 - Minds and Machines 27 (2):357-380.
    The Internet is an important focus of attention for the philosophy of mind and cognitive science communities. This is partly because the Internet serves as an important part of the material environment in which a broad array of human cognitive and epistemic activities are situated. The Internet can thus be seen as an important part of the ‘cognitive ecology’ that helps to shape, support and realize aspects of human cognizing. Much of the previous philosophical work in this area has sought (...)
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  3. Machine intelligence: a chimera.Mihai Nadin - 2019 - AI and Society 34 (2):215-242.
    The notion of computation has changed the world more than any previous expressions of knowledge. However, as know-how in its particular algorithmic embodiment, computation is closed to meaning. Therefore, computer-based data processing can only mimic life’s creative aspects, without being creative itself. AI’s current record of accomplishments shows that it automates tasks associated with intelligence, without being intelligent itself. Mistaking the abstract for the concrete has led to the religion of “everything is an output of computation”—even the humankind that (...)
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  4.  14
    Machine Intelligence and the Social Web: How to Get a Cognitive Upgrade.Paul Smart - 2017 - In Vincent Gripon, Olga Chernavskaya, Paul R. Smart & Tiago Thompsen Primo (eds.), 9th International Conference on Advanced Cognitive Technologies and Applications (COGNITIVE'17). Wilmington, DE, USA: pp. 96–103.
    The World Wide Web (Web) provides access to a global space of information assets and computational services. It also, however, serves as a platform for social interaction (e.g., Facebook) and participatory involvement in all manner of online tasks and activities (e.g., Wikipedia). There is a sense, therefore, that the advent of the Social Web has transformed our understanding of the Web. In addition to viewing the Web as a form of information repository, we are now able to view the Web (...)
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  5.  52
    Machine intelligence and the long-term future of the human species.Tom Stonier - 1988 - AI and Society 2 (2):133-139.
    Intelligence is not a property unique to the human brain; rather it represents a spectrum of phenomena. An understanding of the evolution of intelligence makes it clear that the evolution of machine intelligence has no theoretical limits — unlike the evolution of the human brain. Machine intelligence will outpace human intelligence and very likely will do so during the lifetime of our children. The mix of advanced machine intelligence with human individual (...)
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  6.  56
    Machine intelligence (MI), competence and creativity.Rajakishore Nath - 2009 - AI and Society 23 (3):441-458.
    In mid-twentieth century, the hypothesis, ‘a machine can think’ became very popular after, Alan Turing’s article on ‘Computing Machinery and Intelligence’. This hypothesis, ‘a machine can think’ established the foundations of machine intelligence (MI), and claimed that machines have consciousness and creativity, with the power to compete with human beings. In the first section, I shall show how consciousness and creativity is conceptualized in the domain of MI. The main aim of MI is not only (...)
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  7. The Limits of Machine Intelligence.Henry Shevlin, Karina Vold, Matthew Crosby & Marta Halina - 2019 - EMBO Reports 49177 (20).
    Despite there being little consensus on what intelligence is or how to measure it, the media and the public have become increasingly preoccupied with the concept owing to recent accomplishments in machine learning and research on artificial intelligence (AI). Governments and corporations are investing billions of dollars to fund researchers who are keen to produce an ever‐expanding range of artificial intelligent systems. More than 30 countries have announced such research initiatives over the past 3 years 1. For (...)
     
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  8.  2
    On machine intelligence.Sheila Rock - 1988 - Artificial Intelligence 34 (3):386-387.
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  9. Machine Intelligence 4.B. Meltzer & Donald Michie (eds.) - 1969 - Edinburgh University Press.
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  10. Machine Intelligence 7.B. Meltzer, D. Michie, R. C. Schank & K. M. Colby - 1975 - British Journal for the Philosophy of Science 26 (3):269-273.
  11. Machine Intelligence 4.Bernard Meltzer & Donald Michie - 1970 - British Journal for the Philosophy of Science 21 (2):212-214.
     
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  12.  2
    Machine intelligence and related topics: An information scientist's weekend book.Michael Gordon - 1987 - Artificial Intelligence 31 (3):399.
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  13.  19
    Machine Intelligence: Perspectives on the Computational Model.Andy Clark & Josefa Toribio (eds.) - 1998 - Routledge.
    This volume traces the modern critical and performance history of this play, one of Shakespeare's most-loved and most-performed comedies. The essay focus on such modern concerns as feminism, deconstruction, textual theory, and queer theory.
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  14.  20
    The Social Scaffolding of Machine Intelligence.Paul Smart - 2017 - International Journal on Advances in Intelligent Systems 10 (3&4):261–279.
    The Internet provides access to a global space of information assets and computational services. It also, however, serves as a platform for social interaction (e.g., Facebook) and participatory involvement in all manner of online tasks and activities (e.g., Wikipedia). There is a sense, therefore, that the Internet yields an unprecedented form of access to the human social environment: it provides insight into the dynamics of human behavior (both individual and collective), and it additionally provides access to the digital products of (...)
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  15.  1
    On machine intelligence.R. C. T. Lee - 1975 - Artificial Intelligence 6 (2):213-214.
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  16. Machine Intelligence 1.N. L. Collins, D. Michie & E. Dale - 1968 - British Journal for the Philosophy of Science 19 (3):271-274.
  17. Economic Growth Given Machine Intelligence.Robin Hanson - unknown
    A simple exogenous growth model gives conservative estimates of the economic implications of machine intelligence. Machines complement human labor when they become more productive at the jobs they perform, but machines also substitute for human labor by taking over human jobs. At first, expensive hardware and software does only the few jobs where computers have the strongest advantage over humans. Eventually, computers do most jobs. At first, complementary effects dominate, and human wages rise with computer productivity. But eventually (...)
     
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  18.  52
    Animal Automatism and Machine Intelligence.Deborah Brown - 2015 - Res Philosophica 92 (1):93-115.
    Descartes’s uncompromising rejection of the possibility of animal intelligence was among his most controversial theses. That rejection is based on (1) his commitment to the doctrine of animal automatism and (2) two tests that he takes to be sufficient indicators of thought (the action and language tests). Of these two tests, only the language test is truly definitive, and Descartes is firmly of the view that no animal could demonstrate the capacity to use signs to convey meaning in “all (...)
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  19. Donald Michie: Machine Intelligence, Biology and More.Ashwin Srinivasan - 2009 - Oxford University Press.
    Donald Michie was many things; a computing pioneer in machine intelligence, a cryptographer who made key breakthroughs at Bletchley Park, and a geneticist. Tragically, two years ago he died in a car crash. Here, Ashwin Srinivasan presents an engaging collection of lively essays from Michie's writings, on thinking computers, mice, and much more.
     
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  20.  12
    Ambivalence in machine intelligence: the epistemological roots of the Turing Machine.Belen Prado - 2021 - Signos Filosóficos 23 (45):54-73.
    The Turing Machine presents itself as the very landmark and initial design of digital automata present in all modern general-purpose digital computers and whose design on computable numbers implies deeply ontological as well as epistemological foundations for today’s computers. These lines of work attempt to briefly analyze the fundamental epistemological problem that rose in the late 19th and early 20th century whereby “machine cognition” emerges. The epistemological roots addressed in the TM and notably in its “Halting Problem” uncovers (...)
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  21. Universal intelligence: A definition of machine intelligence.Shane Legg & Marcus Hutter - 2007 - Minds and Machines 17 (4):391-444.
    A fundamental problem in artificial intelligence is that nobody really knows what intelligence is. The problem is especially acute when we need to consider artificial systems which are significantly different to humans. In this paper we approach this problem in the following way: we take a number of well known informal definitions of human intelligence that have been given by experts, and extract their essential features. These are then mathematically formalised to produce a general measure of (...) for arbitrary machines. We believe that this equation formally captures the concept of machine intelligence in the broadest reasonable sense. We then show how this formal definition is related to the theory of universal optimal learning agents. Finally, we survey the many other tests and definitions of intelligence that have been proposed for machines. (shrink)
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  22. Human versus Machine Intelligence.Robin Gandy - 1996 - In Peter Millican Andy Clark (ed.), Machines and Thought the Legacy of Alan Turing. pp. 1--125.
  23. Imagination and machine intelligence.James Mensch - unknown
    The question of the imagination is rather like the question Augustine raised with regard to the nature of time. We all seem to know what it involves, yet find it difficult to define. For Descartes, the imagination was simply our faculty for producing a mental image. He distinguished it from the understanding by noting that while the notion of a thousand sided figure was comprehensible—that is, was sufficiently clear and distinct to be differentiated from a thousand and one sided figure—the (...)
     
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  24.  5
    Mark Burgin’s Legacy: The General Theory of Information, the Digital Genome, and the Future of Machine Intelligence.Rao Mikkilineni - 2023 - Philosophies 8 (6):107.
    With 500+ papers and 20+ books spanning many scientific disciplines, Mark Burgin has left an indelible mark and legacy for future explorers of human thought and information technology professionals. In this paper, I discuss his contribution to the evolution of machine intelligence using his general theory of information (GTI) based on my discussions with him and various papers I co-authored during the past eight years. His construction of a new class of digital automata to overcome the barrier posed (...)
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  25. How Godel's theorem supports the possibility of machine intelligence.Taner Edis - 1998 - Minds and Machines 8 (2):251-262.
    Gödel's Theorem is often used in arguments against machine intelligence, suggesting humans are not bound by the rules of any formal system. However, Gödelian arguments can be used to support AI, provided we extend our notion of computation to include devices incorporating random number generators. A complete description scheme can be given for integer functions, by which nonalgorithmic functions are shown to be partly random. Not being restricted to algorithms can be accounted for by the availability of an (...)
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  26. Turing on the integration of human and machine intelligence.S. G. Sterrett - 2014
    Abstract Philosophical discussion of Alan Turing’s writings on intelligence has mostly revolved around a single point made in a paper published in the journal Mind in 1950. This is unfortunate, for Turing’s reflections on machine (artificial) intelligence, human intelligence, and the relation between them were more extensive and sophisticated. They are seen to be extremely well-considered and sound in retrospect. Recently, IBM developed a question-answering computer (Watson) that could compete against humans on the game show Jeopardy! (...)
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  27.  10
    Galilean resonances: the role of experiment in Turing’s construction of machine intelligence.Bernardo Gonçalves - forthcoming - Annals of Science.
    In 1950, Alan Turing proposed his iconic imitation game, calling it a ‘test’, an ‘experiment’, and the ‘the only really satisfactory support’ for his view that machines can think. Following Turing’s rhetoric, the ‘Turing test’ has been widely received as a kind of crucial experiment to determine machine intelligence. In later sources, however, Turing showed a milder attitude towards what he called his ‘imitation tests’. In 1948, Turing referred to the persuasive power of ‘the actual production of machines’ (...)
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  28.  11
    The paradox of denial and mystification of machine intelligence in the Chinese room.Fatai Asodun - 2022 - South African Journal of Philosophy 41 (3):253-263.
    Two critical questions spun the web of the Turing test debate. First, can an appropriately programmed machine pass the Turing test? Second, is passing the test by such a machine, ipso facto, considered proof that it is intelligent and hence “minded”? While the first question is technological, the second is purely philosophical. Focusing on the second question, this article interrogates the implication of John Searle’s Chinese room denial of machine intelligence. The thrust of Searle’s argument is (...)
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  29. An argument for the impossibility of machine intelligence (preprint).Jobst Landgrebe & Barry Smith - 2021 - Arxiv.
    Since the noun phrase `artificial intelligence' (AI) was coined, it has been debated whether humans are able to create intelligence using technology. We shed new light on this question from the point of view of themodynamics and mathematics. First, we define what it is to be an agent (device) that could be the bearer of AI. Then we show that the mainstream definitions of `intelligence' proposed by Hutter and others and still accepted by the AI community are (...)
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  30. Turing on the Integration of Human and Machine Intelligence.Susan Sterrett - 2017 - In Alisa Bokulich & Juliet Floyd (eds.), Philosophical Explorations of the Legacy of Alan Turing. Springer Verlag. pp. 323-338.
    Philosophical discussion of Alan Turing’s writings on intelligence has mostly revolved around a single point made in a paper published in the journal Mind in 1950. This is unfortunate, for Turing’s reflections on machine (artificial) intelligence, human intelligence, and the relation between them were more extensive and sophisticated. They are seen to be extremely well-considered and sound in retrospect. Recently, IBM developed a question-answering computer (Watson) that could compete against humans on the game show Jeopardy! There (...)
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  31. Complexity and the study of human and machine intelligence.Z. W. Pylyshyn - 1981 - In J. Haugel (ed.), Mind Design. MIT Press.
  32.  73
    Mindless thought experiments (a critique of machine intelligence).Jaron Lanier - manuscript
    Since there isn't a computer that seems conscious at this time, the idea of machine consciousness is supported by thought experiments. Here's one old chestnut: "What if you replaced your neurons one by one with neuron sized and shaped substitutes made of silicon chips that perfectly mimicked the chemical and electric functions of the originals? If you just replaced one single neuron, surely you'd feel the same. As you proceed, as more and more neurons are replaced, you'd stay conscious. (...)
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  33.  37
    Evolutionary computation: Toward a new philosophy of machine intelligence.Thomas B.�ck - 1997 - Complexity 2 (4):28-30.
  34.  21
    International stability in a digital world: emerging trends in machine intelligence, environmental sustainability and society.Larry Stapleton - 2018 - AI and Society 33 (2):159-162.
  35. Will intelligent machines become moral patients?Parisa Moosavi - forthcoming - Philosophy and Phenomenological Research.
    This paper addresses a question about the moral status of Artificial Intelligence (AI): will AIs ever become moral patients? I argue that, while it is in principle possible for an intelligent machine to be a moral patient, there is no good reason to believe this will in fact happen. I start from the plausible assumption that traditional artifacts do not meet a minimal necessary condition of moral patiency: having a good of one's own. I then argue that intelligent (...)
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  36.  3
    From intelligent machines to the human brain.Peggy Seriès & Mark Sprevak - 2014 - In Michela Massimi (ed.), Philosophy and the Sciences for Everyone. pp. 86-102.
    This chapter introduces the idea that computation is a key tool that can help us understand how the human brain works. Recent years have seen a revolution in the kinds of tasks computers can perform. Underlying these advances is the burgeoning field of machine learning, a branch of artificial intelligence, which aims at creating machines that can act without being programmed, learning from data and experience. Rather startlingly, it turns out that the same methods that allow us to (...)
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  37.  68
    Intelligence Unbound: The Future of Uploaded and Machine Minds.Russell Blackford & Damien Broderick (eds.) - 2014 - Wiley-Blackwell.
    _Intelligence Unbound_ explores the prospects, promises, and potential dangers of machine intelligence and uploaded minds in a collection of state-of-the-art essays from internationally recognized philosophers, AI researchers, science fiction authors, and theorists. Compelling and intellectually sophisticated exploration of the latest thinking on Artificial Intelligence and machine minds Features contributions from an international cast of philosophers, Artificial Intelligence researchers, science fiction authors, and more Offers current, diverse perspectives on machine intelligence and uploaded minds, emerging (...)
  38.  6
    The Age of the Intelligent Machine: Singularity, Efficiency, and Existential Peril.Alexander Amigud - 2024 - Philosophy and Technology 37 (2):1-20.
    Machine learning, and more broadly artificial intelligence (AI), is a fascinating technology and can be considered as the closest approximation to the Cartesian “thinking thing” that humans have ever created. Just as the industrial revolution required a new ethos, the age of intelligent machines will create its own, challenging the established moral, economic, and political presuppositions. This paper discusses the relationship between AI and society; it presents several thought experiments to explore the complexity of the relationship and highlights (...)
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  39. 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 (...)
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  40.  46
    Intentional machines: A defence of trust in medical artificial intelligence.Georg Starke, Rik van den Brule, Bernice Simone Elger & Pim Haselager - 2021 - Bioethics 36 (2):154-161.
    Trust constitutes a fundamental strategy to deal with risks and uncertainty in complex societies. In line with the vast literature stressing the importance of trust in doctor–patient relationships, trust is therefore regularly suggested as a way of dealing with the risks of medical artificial intelligence (AI). Yet, this approach has come under charge from different angles. At least two lines of thought can be distinguished: (1) that trusting AI is conceptually confused, that is, that we cannot trust AI; and (...)
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  41.  42
    From Intelligence to Rationality of Minds and Machines in Contemporary Society: The Sciences of Design and the Role of Information.Wenceslao J. Gonzalez - 2017 - Minds and Machines 27 (3):397-424.
    The presence of intelligence and rationality in Artificial Intelligence and the Internet requires a new context of analysis in which Herbert Simon’s approach to the sciences of the artificial is surpassed in order to grasp the role of information in our contemporary setting. This new framework requires taking into account some relevant aspects. In the historical endeavor of building up AI and the Internet, minds and machines have interacted over the years and in many ways through the interrelation (...)
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  42. Computing machines can't be intelligent (...And Turing said so).Peter Kugel - 2002 - Minds and Machines 12 (4):563-579.
    According to the conventional wisdom, Turing said that computing machines can be intelligent. I don't believe it. I think that what Turing really said was that computing machines –- computers limited to computing –- can only fake intelligence. If we want computers to become genuinelyintelligent, we will have to give them enough “initiative” to do more than compute. In this paper, I want to try to develop this idea. I want to explain how giving computers more ``initiative'' can allow (...)
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  43.  27
    Intentional machines: A defence of trust in medical artificial intelligence.Georg Starke, Rik Brule, Bernice Simone Elger & Pim Haselager - 2021 - Bioethics 36 (2):154-161.
    Bioethics, Volume 36, Issue 2, Page 154-161, February 2022.
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  44.  17
    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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  45.  24
    Time Machines: Artificial Intelligence, Process, and Narrative.Mark Coeckelbergh - 2021 - Philosophy and Technology 34 (4):1623-1638.
    While today there is much discussion about the ethics of artificial intelligence, less work has been done on the philosophical nature of AI. Drawing on Bergson and Ricoeur, this paper proposes to use the concepts of time, process, and narrative to conceptualize AI and its normatively relevant impact on human lives and society. Distinguishing between a number of different ways in which AI and time are related, the paper explores what it means to understand AI as narrative, as process, (...)
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  46.  10
    Alex Roland. Strategic Computing: DARPA and the Quest for Machine Intelligence, 1983–1993. With Philip Shiman. 453 pp., illus., index. Cambridge, Mass.: MIT Press, 2002. [REVIEW]Chris Hables Gray - 2006 - Isis 97 (1):188-189.
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  47. Artificial Intelligence, Jobs and the Future of Work: Racing with the Machines.Alban Duka & Edvard P. G. Bruun - 2018 - Basic Income Studies 13 (2).
    Artificial intelligence is rapidly entering our daily lives in the form of driverless cars, automated online assistants and virtual reality experiences. In so doing, AI has already substituted human employment in areas that were previously thought to be uncomputerizable. Based on current trends, the technological displacement of labor is predicted to be significant in the future – if left unchecked this will lead to catastrophic societal unemployment levels. This paper presents a means to mitigate future technological unemployment through the (...)
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  48.  20
    Alex Roland with Philip Shiman, strategic computing: Darpa and the Quest for machine intelligence, 1983–1993. History of computing. Cambridge, ma and London: Mit press, 2002. Pp. XXVI+427. Isbn 0-262-18226-2. £33.50. [REVIEW]James Sumner - 2006 - British Journal for the History of Science 39 (4):622-624.
  49.  3
    Review of B. MELTZER and D. MICHIE: Machine Intelligence 7_; R. C. SCHANK and K. M. COLBY: _Computer Models of Thought and Language[REVIEW]Margaret A. Boden - 1975 - British Journal for the Philosophy of Science 26 (3):269-273.
  50.  6
    The Intelligence of a Machine.Jean Epstein - 2014 - Univocal Publishing.
    The advent of the cinema radically altered our comprehension of time, space, and reality. With his experience as a pioneering avant-garde filmmaker, Jean Epstein uses the universes created by the cinematograph to deconstruct our understanding of how time and space, reality and unreality, continuity and discontinuity, determinism and randomness function both inside and outside the cinema. Time, he says, should be regarded as the first, not the fourth, dimension—and the cinematograph allows us, for the first time, to manipulate it in (...)
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