Results for 'Machine cognition'

980 found
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  1.  84
    Does Computation Reveal Machine Cognition?Prakash Mondal - 2014 - Biosemiotics 7 (1):97-110.
    This paper seeks to understand machine cognition. The nature of machine cognition has been shrouded in incomprehensibility. We have often encountered familiar arguments in cognitive science that human cognition is still faintly understood. This paper will argue that machine cognition is far less understood than even human cognition despite the fact that a lot about computer architecture and computational operations is known. Even if there have been putative claims about the transparency of (...)
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  2.  60
    Human-Extended Machine Cognition.Paul Smart - 2018 - Cognitive Systems Research 49:9–23.
    Human-extended machine cognition is a specific form of artificial intelligence in which the casually-active physical vehicles of machine-based cognitive states and processes include one or more human agents. Human-extended machine cognition is thus a specific form of extended cognition that sees human agents as constituent parts of the physical fabric that realizes machine-based cognitive capabilities. This idea is important, not just because of its impact on current philosophical debates about the extended character of (...)
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  3.  23
    Anticipations as Abductions in Human and Machine Cognition Deep Learning: Locked and Unlocked Capacities.Lorenzo Magnani - 2020 - Postmodern Openings 11 (4):230-247.
    In my opinion, it is only in the framework of a research dealing with abductive cognition that we can analyze important cognitive aspects of human and machine capacities. From the point of view of human capacities the phenomenological concept of anticipation, which is related to the problem of the spontaneous generation of spatiality and its three-dimensionality, will be central. I will describe that anticipations can be seen as types of visual and manipulative abduction and also fruitful to illustrate, (...)
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  4.  68
    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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  5.  68
    Machine consciousness: Cognitive and kinaesthetic imagination.Susan A. J. Stuart - 2007 - Journal of Consciousness Studies 14 (7):141-153.
    Machine consciousness exists already in organic systems and it is only a matter of time -- and some agreement -- before it will be realised in reverse-engineered organic systems and forward- engineered inorganic systems. The agreement must be over the preconditions that must first be met if the enterprise is to be successful, and it is these preconditions, for instance, being a socially-embedded, structurally-coupled and dynamic, goal-directed entity that organises its perceptual input and enacts its world through the application (...)
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  6. 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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  7.  72
    The Cognitive Approach to Conscious Machines.Pentti O. Haikonen - 2003 - Thorverton UK: Imprint Academic.
    This books is a must for anyone interested in consciousness research and the latest ideas in the forthcoming technology of mind.
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  8. Mind as Machine: A History of Cognitive Science.Margaret Ann Boden - 2006 - Oxford University Press.
    Cognitive science is the project of understanding the mind by modelling its workings. Its development is one of the most remarkable and fascinating intellectual achievements of the modern era. Mind as Machine is a masterful history of cognitive science, told by one of its most eminent practitioners.
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  9. Machine Learning and the Cognitive Basis of Natural Language.Shalom Lappin - unknown
    Machine learning and statistical methods have yielded impressive results in a wide variety of natural language processing tasks. These advances have generally been regarded as engineering achievements. In fact it is possible to argue that the success of machine learning methods is significant for our understanding of the cognitive basis of language acquisition and processing. Recent work in unsupervised grammar induction is particularly relevant to this issue. It suggests that knowledge of language can be achieved through general learning (...)
     
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  10.  57
    Cognition‐Enhanced Machine Learning for Better Predictions with Limited Data.Florian Sense, Ryan Wood, Michael G. Collins, Joshua Fiechter, Aihua Wood, Michael Krusmark, Tiffany Jastrzembski & Christopher W. Myers - 2022 - Topics in Cognitive Science 14 (4):739-755.
    The fields of machine learning (ML) and cognitive science have developed complementary approaches to computationally modeling human behavior. ML's primary concern is maximizing prediction accuracy; cognitive science's primary concern is explaining the underlying mechanisms. Cross-talk between these disciplines is limited, likely because the tasks and goals usually differ. The domain of e-learning and knowledge acquisition constitutes a fruitful intersection for the two fields’ methodologies to be integrated because accurately tracking learning and forgetting over time and predicting future performance based (...)
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  11. Florida Institute for Human and Machine Cognition.Phil Dowe, Paul Noordhof & Clark Glymour - unknown
    For most of the contributions to this volume, the project is this: Fill out “Event X is a cause of event Y if and only if……” where the dots on the right are to be filled in by a claims formulated in terms using any of (1) descriptions of possible worlds and their relations; (2) a special predicate, “is a law;” (3) “chances;” and (4) anything else one thinks one needs. The form of analysis is roughly the same as that (...)
     
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  12.  17
    Conceptualizing Machines in an Eco-Cognitive Perspective.Lorenzo Magnani - 2022 - Philosophies 7 (5):94.
    Eco-cognitive computationalism explores computing in context, adhering to some of the key ideas presented by modern cognitive science perspectives on embodied, situated, and distributed cognition. First of all, when physical computation is seen from the perspective of the ecology of cognition it is possible to clearly understand the role Turing assigned to the process of “education” of the machine, paralleling it to the education of human brains, in the invention of the Logical Universal Machine. It is (...)
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  13.  3
    Cognitive Models for Machine Theory of Mind.Christian Lebiere, Peter Pirolli, Matthew Johnson, Michael Martin & Donald Morrison - forthcoming - Topics in Cognitive Science.
    Some of the required characteristics for a true machine theory of mind (MToM) include the ability to (1) reproduce the full diversity of human thought and behavior, (2) develop a personalized model of an individual with very limited data, and (3) provide an explanation for behavioral predictions grounded in the cognitive processes of the individual. We propose that a certain class of cognitive models provide an approach that is well suited to meeting those requirements. Being grounded in a mechanistic (...)
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  14.  27
    Neural Machines: A Defense of Non-Representationalism in Cognitive Neuroscience.Matej Kohár - 2023 - Springer Verlag.
    In this book, Matej Kohar demonstrates how the new mechanistic account of explanation can be used to support a non-representationalist view of explanations in cognitive neuroscience, and therefore can bring new conceptual tools to the non-representationalist arsenal. Kohar focuses on the explanatory relevance of representational content in constitutive mechanistic explanations typical in cognitive neuroscience. The work significantly contributes to two areas of literature: 1) the debate between representationalism and non-representationalism, and 2) the literature on mechanistic explanation. Kohar begins with an (...)
  15.  7
    La machine univers: création, cognition et culture informatique.Pierre Lévy - 1987 - Editions La Découverte.
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  16.  46
    Building Thinking Machines by Solving Animal Cognition Tasks.Matthew Crosby - 2020 - Minds and Machines 30 (4):589-615.
    In ‘Computing Machinery and Intelligence’, Turing, sceptical of the question ‘Can machines think?’, quickly replaces it with an experimentally verifiable test: the imitation game. I suggest that for such a move to be successful the test needs to be relevant, expansive, solvable by exemplars, unpredictable, and lead to actionable research. The Imitation Game is only partially successful in this regard and its reliance on language, whilst insightful for partially solving the problem, has put AI progress on the wrong foot, prescribing (...)
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  17. Mind, a Machine? Review of “The Search for a Theory of Cognition: Early Mechanisms and New Ideas” edited by Stefano Franchi and Francesco Bianchini.P. Cariani - 2012 - Constructivist Foundations 7 (3):222-227.
    Upshot: Written by recognized experts in their fields, the book is a set of essays that deals with the influences of early cybernetics, computational theory, artificial intelligence, and connectionist networks on the historical development of computational-representational theories of cognition. In this review, I question the relevance of computability arguments and Jonasian phenomenology, which has been extensively invoked in recent discussions of autopoiesis and Ashby’s homeostats. Although the book deals only indirectly with constructivist approaches to cognition, it is useful (...)
     
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  18. Cognitive Dynamics: Conceptual change in humans and machines.Eric Dietrich Art Markman (ed.) - 2000 - Lawrence Erlbaum.
     
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  19.  35
    Rule based fuzzy cognitive maps and natural language processing in machine ethics.Rollin M. Omari & Masoud Mohammadian - 2016 - Journal of Information, Communication and Ethics in Society 14 (3):231-253.
    The developing academic field of machine ethics seeks to make artificial agents safer as they become more pervasive throughout society. In contrast to computer ethics, machine ethics is concerned with the behavior of machines toward human users and other machines. This study aims to use an action-based ethical theory founded on the combinational aspects of deontological and teleological theories of ethics in the construction of an artificial moral agent (AMA).,The decision results derived by the AMA are acquired via (...)
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  20.  41
    Governing industrial organizations through cognitive machines.Farley Simon Nobre - 2012 - AI and Society 27 (4):501-507.
    Recently, researchers on organization theory and behavior were challenged by the introduction of cognitive machines in the list of the organization’s participants. Researchers in this field advocated that cognitive machines contribute to improve cognitive abilities in the organization by extending people’s rationality and decision-making capacity and by reducing intra-individual and group dysfunctional conflicts. This paper supports these findings and extends their results to upper layers at managerial and organizational levels of application by proposing the concept of new industrial organizations with (...)
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  21.  19
    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). 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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  22.  14
    Can Machines Find the Bilingual Advantage? Machine Learning Algorithms Find No Evidence to Differentiate Between Lifelong Bilingual and Monolingual Cognitive Profiles.Samuel Kyle Jones, Jodie Davies-Thompson & Jeremy Tree - 2021 - Frontiers in Human Neuroscience 15.
    Bilingualism has been identified as a potential cognitive factor linked to delayed onset of dementia as well as boosting executive functions in healthy individuals. However, more recently, this claim has been called into question following several failed replications. It remains unclear whether these contradictory findings reflect how bilingualism is defined between studies, or methodological limitations when measuring the bilingual effect. One key issue is that despite the claims that bilingualism yields general protection to cognitive processes, studies reporting putative bilingual differences (...)
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  23.  9
    Machinations: Computational Studies of Logic, Language, and Cognition.Richard Spencer-Smith, Steve Torrance & Stephen B. Torrance - 1992 - Intellect Books.
    This volume brings together a collection of papers covering a wide range of topics in computer and cognitive science. Topics included are: the foundational relevance of logic to computer science, with particular reference to tense logic, constructive logic, and Horn clause logic; logic as the theoretical underpinnings of the engineering discipline of expert systems; a discussion of the evolution of computational linguistics into functionally distinct task levels; and current issues in the implementation of speech act theory.
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  24. What cognitive scientists need to know about virtual machines.Aaron Sloman - 2009 - In N. A. Taatgen & H. van Rijn (eds.), Proceedings of the 31st Annual Conference of the Cognitive Science Society. pp. 1210--1215.
  25.  67
    Potential of full human–machine symbiosis through truly intelligent cognitive systems.Ron Sun - 2020 - AI and Society 35 (1):17-28.
    It is highly likely that, to achieve full human–machine symbiosis, truly intelligent cognitive systems—human-like —may have to be developed first. Such systems should not only be capable of performing human-like thinking, reasoning, and problem solving, but also be capable of displaying human-like motivation, emotion, and personality. In this opinion article, I will argue that such systems are indeed possible and needed to achieve true and full symbiosis with humans. A computational cognitive architecture is used in this article to illustrate, (...)
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  26.  78
    The cognitive development of machine consciousness implementations.Raúl Arrabales, Agapito Ledezma & Araceli Sanchis - 2010 - International Journal of Machine Consciousness 2 (2):213-225.
  27.  69
    Anthropomorphising Machines and Computerising Minds: The Crosswiring of Languages between Artificial Intelligence and Brain & Cognitive Sciences.Luciano Floridi & Anna C. Nobre - 2024 - Minds and Machines 34 (1):1-9.
    The article discusses the process of “conceptual borrowing”, according to which, when a new discipline emerges, it develops its technical vocabulary also by appropriating terms from other neighbouring disciplines. The phenomenon is likened to Carl Schmitt’s observation that modern political concepts have theological roots. The authors argue that, through extensive conceptual borrowing, AI has ended up describing computers anthropomorphically, as computational brains with psychological properties, while brain and cognitive sciences have ended up describing brains and minds computationally and informationally, as (...)
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  28. On Potential Cognitive Abilities in the Machine Kingdom.José Hernández-Orallo & David L. Dowe - 2013 - Minds and Machines 23 (2):179-210.
    Animals, including humans, are usually judged on what they could become, rather than what they are. Many physical and cognitive abilities in the ‘animal kingdom’ are only acquired (to a given degree) when the subject reaches a certain stage of development, which can be accelerated or spoilt depending on how the environment, training or education is. The term ‘potential ability’ usually refers to how quick and likely the process of attaining the ability is. In principle, things should not be different (...)
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  29.  32
    The cognitive RISC machine needs complexity.Richard A. Heath - 1994 - Behavioral and Brain Sciences 17 (4):669-670.
  30.  45
    A cognitive architecture with incremental levels of machine consciousness inspired by cognitive neuroscience.Klaus Raizer, André L. O. Paraense & Ricardo R. Gudwin - 2012 - International Journal of Machine Consciousness 4 (2):335-352.
  31.  47
    Smart Machines: IBM’s Watson and the Era of Cognitive Computing.Stanley Shostak - 2016 - The European Legacy 21 (8):870-871.
  32.  9
    COHUMAIN: Building the Socio‐Cognitive Architecture of Collective Human–Machine Intelligence.Cleotilde Gonzalez, Henny Admoni, Scott Brown & Anita Williams Woolley - forthcoming - Topics in Cognitive Science.
    In recent years, we have experienced rapid development of advanced technology, machine learning, and artificial intelligence (AI), intended to interact with and augment the abilities of humans in practically every area of life. With the rapid growth of new capabilities, such as those enabled by generative AI (e.g., ChatGPT), AI is increasingly at the center of human communication and collaboration, resulting in a growing recognition of the need to understand how humans and AI can integrate their inputs in collaborative (...)
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  33.  97
    Gender Difference in Psychological, Cognitive, and Behavioral Patterns Among University Students During COVID-19: A Machine Learning Approach.Yijun Zhao, Yi Ding, Yangqian Shen & Wei Liu - 2022 - Frontiers in Psychology 13.
    The COVID-19 pandemic affects all population segments and is especially detrimental to university students because social interaction is critical for a rewarding campus life and valuable learning experiences. In particular, with the suspension of in-person activities and the adoption of virtual teaching modalities, university students face drastic changes in their physical activities, academic careers, and mental health. Our study applies a machine learning approach to explore the gender differences among U.S. university students in response to the global pandemic. Leveraging (...)
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  34.  30
    Artificial intelligence as cognitive enhancement? From Decision Support Systems (DSSs) to Reflection machines.Zaida Espinosa Zárate - 2023 - Veritas: Revista de Filosofía y Teología 55:93-115.
    Resumen: El presente trabajo analiza si los Sistemas de apoyo a la decisión (DSSs) y otros asistentes para su uso, como las Reflection machines o los Personal Assistants that Learn (PAL), contribuyen de hecho a una mejora cognitiva, como habitualmente se tiende a asumir. Es decir, se examina si su potencial para expandir e impulsar la acción de las facultades cognoscitivas se ve efectivamente actualizado y, en consecuencia, si sirven para reafirmar el sentido capacitante de la IA y la extensión (...)
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  35. 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 example, the (...)
     
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  36.  18
    Forgetting Machines: Knowledge Management Evolution in Early Modern Europe.Alberto Cevolini - 2016 - Brill.
    _Forgetting Machines. Knowledge Management Evolution in Early Modern Europe_ investigates the evolution of scholarly practices and the transformation of cognitive habits in the early modern age, focussing on the development of note-taking systems and data storage devices.
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  37.  42
    Man as Machine: A Review of Memory and the Computational Brain: Why Cognitive Science will Transform Neuroscience, by CR Gallistel and AP King. [REVIEW]John Donohoe - 2010 - Behavior and Philosophy 38:83-101.
  38. Turing machines and causal mechanisms in cognitive science.Otto Lappi & Anna-Mari Rusanen - 2011 - In Phyllis McKay Illari Federica Russo (ed.), Causality in the Sciences. Oxford University Press. pp. 224--239.
     
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  39.  16
    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” (...)
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  40.  33
    Improving Human‐Machine Cooperative Classification Via Cognitive Theories of Similarity.Brett D. Roads & Michael C. Mozer - 2017 - Cognitive Science 41 (5):1394-1411.
    Acquiring perceptual expertise is slow and effortful. However, untrained novices can accurately make difficult classification decisions by reformulating the task as similarity judgment. Given a query image and a set of reference images, individuals are asked to select the best matching reference. When references are suitably chosen, the procedure yields an implicit classification of the query image. To optimize reference selection, we develop and evaluate a predictive model of similarity-based choice. The model builds on existing psychological literature and accommodates stochastic, (...)
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  41. Extended Cognition and the Internet: A Review of Current Issues and Controversies.Paul Smart - 2017 - Philosophy and Technology 30 (3):357-390.
    The Internet is an important focus of attention for those concerned with issues of extended cognition. In particular, the application of active externalist theorizing to the Internet gives rise to the notion of Internet-extended cognition: the idea that the Internet can form part of an integrated nexus of material elements that serves as the realization base for human mental states and processes. The current review attempts to survey a range of issues and controversies that arise in respect of (...)
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  42.  46
    The impact of cognitive machines on complex decisions and organizational change.Farley S. Nobre, Andrew M. Tobias & David S. Walker - 2009 - AI and Society 24 (4):365-381.
    Humans and organizations have limitations of computational capacity and information management. Such constraints are synonymous with bounded rationality. Therefore, in order to extend the human and organizational boundaries to more advanced models of cognition, this research proposes concepts of cognitive machines in organizations. From a micro point of view, what makes this research distinct is that, beyond people, it includes in the list of participants of the organization the cognitive machines. From a macro point of view, this paper relies (...)
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  43. Why machines cannot feel.Rosemarie Velik - 2010 - Minds and Machines 20 (1):1-18.
    For a long time, emotions have been ignored in the attempt to model intelligent behavior. However, within the last years, evidence has come from neuroscience that emotions are an important facet of intelligent behavior being involved into cognitive problem solving, decision making, the establishment of social behavior, and even conscious experience. Also in research communities like software agents and robotics, an increasing number of researchers start to believe that computational models of emotions will be needed to design intelligent systems. Nevertheless, (...)
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  44.  77
    Social machines: a philosophical engineering.Spyridon Orestis Palermos - 2017 - Phenomenology and the Cognitive Sciences 16 (5):953-978.
    In Weaving the Web, Berners-Lee defines Social Machines as biotechnologically hybrid Web-processes on the basis of which, “high-level activities, which have occurred just within one human’s brain, will occur among even larger more interconnected groups of people acting as if the shared a larger intuitive brain”. The analysis and design of Social Machines has already started attracting considerable attention both within the industry and academia. Web science, however, is still missing a clear definition of what a Social Machine is, (...)
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  45.  27
    Rhythm May Be Key to Linking Language and Cognition in Young Infants: Evidence From Machine Learning.Joseph C. Y. Lau, Alona Fyshe & Sandra R. Waxman - 2022 - Frontiers in Psychology 13.
    Rhythm is key to language acquisition. Across languages, rhythmic features highlight fundamental linguistic elements of the sound stream and structural relations among them. A sensitivity to rhythmic features, which begins in utero, is evident at birth. What is less clear is whether rhythm supports infants' earliest links between language and cognition. Prior evidence has documented that for infants as young as 3 and 4 months, listening to their native language supports the core cognitive capacity of object categorization. This precocious (...)
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  46.  13
    Editorial: Individual Differences in Cognition and Affects in the Era of Pandemic and Machine Learning.Andrea Vranic, Yang Jiang & Xiaopeng Zhao - 2022 - Frontiers in Psychology 13.
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  47.  20
    Detecting Temporal Cognition in Text: Comparison of Judgements by Self, Expert and Machine.Erin I. Walsh & Janie Busby Grant - 2018 - Frontiers in Psychology 9.
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  48.  21
    Application of Machine Learning Models for Tracking Participant Skills in Cognitive Training.Sanjana Sandeep, Christian R. Shelton, Anja Pahor, Susanne M. Jaeggi & Aaron R. Seitz - 2020 - Frontiers in Psychology 11.
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  49.  43
    Machine learning and human learning: a socio-cultural and -material perspective on their relationship and the implications for researching working and learning.David Guile & Jelena Popov - forthcoming - AI and Society:1-14.
    The paper adopts an inter-theoretical socio-cultural and -material perspective on the relationship between human + machine learning to propose a new way to investigate the human + machine assistive assemblages emerging in professional work (e.g. medicine, architecture, design and engineering). Its starting point is Hutchins’s (1995a) concept of ‘distributed cognition’ and his argument that his concept of ‘cultural ecosystems’ constitutes a unit of analysis to investigate collective human + machine working and learning (Hutchins, Philos Psychol 27:39–49, (...)
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  50. Universal psychometrics: Measuring cognitive abilities in the machine kingdom.Jose Hernandez-Orallo, David Dowe & M. Victoria Hernandez-Lloreda - unknown
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