Results for 'Modularity and Learning'

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  1. Modular and hierarchical learning systems.Michael I. Jordan & Robert A. Jacobs - 1995 - In Michael A. Arbib (ed.), Handbook of Brain Theory and Neural Networks. MIT Press. pp. 579--582.
     
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  2. Autism, Modularity and Theories of Mind.Michael K. Cundall - 2003 - Dissertation, University of Cincinnati
    In this dissertation I argue for a wider and more robust notion of the modularity of mind thesis. The developmental disorder of autism is the prime analytic tool for developing this approach. I argue that a variety of other approaches are deeply flawed in that they cannot account for the autistic spectrum disorder. I mean by this the autistic profile of deficits such as the lack of social interaction and the avoidance of social contact. I begin with Fodorian (...). I argue that autism presents us with a case that threatens the division Fodor has between modules and central systems. The autistic disorder exemplifies an area of higher cognition that has many of the properties commonly associated with modular processing. Since Fodor cannot opt for a modular account of theory of mind it must be that his account of central systems is incorrect. I next argue that Baron-Cohen's amended modular architecture cannot explain autism since the autistic deficit cannot be due to a defective module for processing intentional action. Furthermore, his use of modularity threatens to make his view of cognition incoherent. Finally I take up Gopnik and Meltzoff's approach that eschews any type of modularity and instead posits a general learning mechanism. If autism, as they claim, were a general theory-building problem, then one should expect to see other behavioral deficits in other areas of autistic cognition. We do not. I then offer an alternative version of modularity inspired by Karmiloff-Smith . It gives us advantages. On Karmiloff-Smith's account we would expect the autistic deficit to have more perceptually basic components and recent research is bearing this out. Progressive modularity also provides us with a framework in which to understand the ways autistic persons understand the social world. This approach also seeks to unify the cognitive work being done on development with burgeoning work on development in neuroscience. (shrink)
     
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  3.  23
    Modularity and Recombination in Technological Evolution.Mathieu Charbonneau - 2016 - Philosophy and Technology 29 (4):373-392.
    Cultural evolutionists typically emphasize the informational aspect of social transmission, that of the learning, stabilizing, and transformation of mental representations along cultural lineages. Social transmission also depends on the production of public displays such as utterances, behaviors, and artifacts, as these displays are what social learners learn from. However, the generative processes involved in the production of public displays are usually abstracted away in both theoretical assessments and formal models. The aim of this paper is to complement the informational (...)
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  4.  72
    Evo-devo, modularity, and evolvability: Insights for cultural evolution.Simon M. Reader - 2006 - Behavioral and Brain Sciences 29 (4):361-362.
    Evolutionary developmental biology (“evo-devo”) may provide insights and new methods for studies of cognition and cultural evolution. For example, I propose using cultural selection and individual learning to examine constraints on cultural evolution. Modularity, the idea that traits vary independently, can facilitate evolution (increase “evolvability”), because evolution can act on one trait without disrupting another. I explore links between cognitive modularity, evolutionary modularity, and cultural evolvability. (Published Online November 9 2006).
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  5.  15
    Composite Agency: Semiotics of Modularity and Guiding Interactions.Alexei A. Sharov - 2017 - Biosemiotics 10 (2):157-178.
    Principles of constructivism are used here to explore how organisms develop tools, subagents, scaffolds, signs, and adaptations. Here I discuss reasons why organisms have composite nature and include diverse subagents that interact in partially cooperating and partially conflicting ways. Such modularity is necessary for efficient and robust functionality, including mutual construction and adaptability at various time scales. Subagents interact via material and semiotic relations, some of which force or prescribe actions of partners. Other interactions, which I call “guiding”, do (...)
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  6.  7
    A Guide for Research Supervisors.David Black & Centre for Research Into Human Communication And Learning - 1994
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  7. Machine Learning and Irresponsible Inference: Morally Assessing the Training Data for Image Recognition Systems.Owen C. King - 2019 - In Matteo Vincenzo D'Alfonso & Don Berkich (eds.), On the Cognitive, Ethical, and Scientific Dimensions of Artificial Intelligence. Springer Verlag. pp. 265-282.
    Just as humans can draw conclusions responsibly or irresponsibly, so too can computers. Machine learning systems that have been trained on data sets that include irresponsible judgments are likely to yield irresponsible predictions as outputs. In this paper I focus on a particular kind of inference a computer system might make: identification of the intentions with which a person acted on the basis of photographic evidence. Such inferences are liable to be morally objectionable, because of a way in which (...)
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  8. Atomistic learning in non-modular systems.Pierre Poirier - 2005 - Philosophical Psychology 18 (3):313-325.
    We argue that atomistic learning?learning that requires training only on a novel item to be learned?is problematic for networks in which every weight is available for change in every learning situation. This is potentially significant because atomistic learning appears to be commonplace in humans and most non-human animals. We briefly review various proposed fixes, concluding that the most promising strategy to date involves training on pseudo-patterns along with novel items, a form of learning that is (...)
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  9. The modular structure of learning.C. R. Gallistel - 1998 - Brain and Mind: Evolutionary Perspectives 5:56-68.
  10.  43
    Complicity and modularization: how universities were made safe for the market.Bob Brecher - 2005 - Critical Quarterly 476 (1-2):77-82.
    Education has always occupied a contradictory position in society, expected to ensure compliance and continuity and yet to encourage critique and renewal. Since the early 1980s, however, successive UK governments have directly mobilised education, and higher education in particular, as an ideological tool in the task of embedding neo-liberalism as ‘common sense’. Modularisation has been in the vanguard, first in the universities, more latterly at secondary level. The effect has been disastrous: here as elsewhere, choice has become depressingly fetishised; knowledge, (...)
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  11. Gathering the godless: intentional "communities" and ritualizing ordinary life. Section Three.Cultural Production : Learning to Be Cool, or Making Due & What We Do - 2015 - In Anthony B. Pinn (ed.), Humanism: essays on race, religion and cultural production. London: Bloomsbury Academic, an imprint of Bloomsbury Publishing Plc.
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  12.  1
    Narrow and Broad Faculties in System 1 and System 2: Toward Consensus in the Debate on Modularity.Norbert Francis - 2021 - Journal of Cognition and Culture 21 (3-4):261-279.
    Research on learning, the structure of attained knowledge, and the use of this competence in performance has repeatedly returned to longstanding proposals about how to better understand proficient use of knowledge and how humans acquire it. The following article takes up an exchange between Chiappe & Gardner and Barrett & Kurzban on the concept of modularity, one of these proposals. Despite the disagreements expressed, a careful reading of the contributions shows that they also left us with lines of (...)
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  13.  57
    A Modular Approach to Business Ethics Integration: At the Intersection of the Stand-Alone and the Integrated Approaches.Laura P. Hartman & Patricia H. Werhane - 2009 - Journal of Business Ethics 90 (S3):295 - 300.
    While no one seems to believe that business schools or their faculties bear entire responsibility for the ethical decision-making processes of their students, these same institutions do have some burden of accountability for educating students surrounding these skills. To that end, the standards promulgated by the Association to Advance Collegiate School of Business, their global accrediting body, require that students learn ethics as part of a business degree. However, since the AACSB does not require the inclusion of a specific course (...)
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  14. Causal learning: psychology, philosophy, and computation.Alison Gopnik & Laura Schulz (eds.) - 2007 - New York: Oxford University Press.
    Understanding causal structure is a central task of human cognition. Causal learning underpins the development of our concepts and categories, our intuitive theories, and our capacities for planning, imagination and inference. During the last few years, there has been an interdisciplinary revolution in our understanding of learning and reasoning: Researchers in philosophy, psychology, and computation have discovered new mechanisms for learning the causal structure of the world. This new work provides a rigorous, formal basis for theory theories (...)
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  15. Changing Practice.Situated Learning - 2008 - In Ash Amin & Joanne Roberts (eds.), Community, Economic Creativity, and Organization. Oxford University Press. pp. 283--296.
     
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  16. Précis of Beyond modularity: A developmental perspective on cognitive science.Annette Karmiloff-Smith - 1994 - Behavioral and Brain Sciences 17 (4):693-707.
    Beyond modularityattempts a synthesis of Fodor's anticonstructivist nativism and Piaget's antinativist constructivism. Contra Fodor, I argue that: (1) the study of cognitive development is essential to cognitive science, (2) the module/central processing dichotomy is too rigid, and (3) the mind does not begin with prespecified modules; rather, development involves a gradual process of “modularization.” Contra Piaget, I argue that: (1) development rarely involves stagelike domain-general change and (2) domainspecific predispositions give development a small but significant kickstart by focusing the infant's (...)
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  17.  19
    Authorship Not Taught and Not Caught in Undergraduate Research Experiences at a Research University.Lauren E. Abbott, Amy Andes, Aneri C. Pattani & Patricia Ann Mabrouk - 2020 - Science and Engineering Ethics 26 (5):2555-2599.
    This grounded study investigated the negotiation of authorship by faculty members, graduate student mentors, and their undergraduate protégés in undergraduate research experiences at a private research university in the northeastern United States. Semi-structured interviews using complementary scripts were conducted separately with 42 participants over a 3 year period to probe their knowledge and understanding of responsible authorship and publication practices and learn how faculty and students entered into authorship decision-making intended to lead to the publication of peer-reviewed technical papers. Herein (...)
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  18.  60
    Thinking about biology. Modular constraints on categorization and reasoning in the everyday life of Americans, Maya, and scientists.Scott Atran, Douglas I. Medin & Norbert Ross - 2002 - Mind and Society 3 (2):31-63.
    This essay explores the universal cognitive bases of biological taxonomy and taxonomic inference using cross-cultural experimental work with urbanized Americans and forest-dwelling Maya Indians. A universal, essentialist appreciation of generic species appears as the causal foundation for the taxonomic arrangement of biodiversity, and for inference about the distribution of causally-related properties that underlie biodiversity. Universal folkbiological taxonomy is domain-specific: its structure does not spontaneously or invariably arise in other cognitive domains, like substances, artifacts or persons. It is plausibly an innately-determined (...)
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  19. A Unified Account of General Learning Mechanisms and Theory‐of‐Mind Development.Theodore Bach - 2014 - Mind and Language 29 (3):351-381.
    Modularity theorists have challenged that there are, or could be, general learning mechanisms that explain theory-of-mind development. In response, supporters of the ‘scientific theory-theory’ account of theory-of-mind development have appealed to children's use of auxiliary hypotheses and probabilistic causal modeling. This article argues that these general learning mechanisms are not sufficient to meet the modularist's challenge. The article then explores an alternative domain-general learning mechanism by proposing that children grasp the concept belief through the progressive alignment (...)
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  20.  56
    Can massive modularity explain human intelligence? Information control problem and implications for cognitive architecture.Linus Ta-Lun Huang - 2021 - Synthese 198 (9):8043-8072.
    A fundamental task for any prospective cognitive architecture is information control: routing information to the relevant mechanisms to support a variety of tasks. Jerry Fodor has argued that the Massive Modularity Hypothesis cannot account for flexible information control due to its architectural commitments and its reliance on heuristic information processing. I argue instead that the real trouble lies in its commitment to nativism—recent massive modularity models, despite incorporating mechanisms for learning and self-organization, still cannot learn to control (...)
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  21.  2
    Driver Attribute Filling for Genes in Interaction Network via Modularity Subspace-Based Concept Learning from Small Samples.Fei Xie, Jianing Xi & Qun Duan - 2020 - Complexity 2020:1-12.
    The aberrations of a gene can influence it and the functions of its neighbour genes in gene interaction network, leading to the development of carcinogenesis of normal cells. In consideration of gene interaction network as a complex network, previous studies have made efforts on the driver attribute filling of genes via network properties of nodes and network propagation of mutations. However, there are still obstacles from problems of small size of cancer samples and the existence of drivers without property of (...)
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  22.  85
    Trading spaces: Computation, representation, and the limits of uninformed learning.Andy Clark & Chris Thornton - 1997 - Behavioral and Brain Sciences 20 (1):57-66.
    Some regularities enjoy only an attenuated existence in a body of training data. These are regularities whose statistical visibility depends on some systematic recoding of the data. The space of possible recodings is, however, infinitely large – it is the space of applicable Turing machines. As a result, mappings that pivot on such attenuated regularities cannot, in general, be found by brute-force search. The class of problems that present such mappings we call the class of “type-2 problems.” Type-1 problems, by (...)
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  23.  48
    Trading Spaces: Connectionism and the Limits of Uninformed Learning.Andy Clark & Chris Thornton - unknown
    It is widely appreciated that the difficulty of a particluar computation varies according to how the input data are presented. What is less understood is the effect of this computation/representation tradeoff within familiar learning paradigms. We argue that existing learning algoritms are often poorly equipped to solve problems involving a certain type of important and widespread regularity, which we call 'type-2' regularity. The solution in these cases is to trade achieved representation against computational search. We investigate several ways (...)
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  24.  23
    A Modular Neural Network Model of Concept Acquisition.Philippe G. Schyns - 1991 - Cognitive Science 15 (4):461-508.
    Previous neural network models of concept learning were mainly implemented with supervised learning schemes. However, studies of human conceptual memory have shown that concepts may be learned without a teacher who provides the category name to associate with exemplars. A modular neural network architecture that realizes concept acquisition through two functionally distinct operations, categorizing and naming, is proposed as an alternative. An unsupervised algorithm realizes the categorizing module by constructing representations of categories compatible with prototype theory. The naming (...)
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  25.  5
    A Modular Neural Network Model of Concept Acquisition.Philippe G. Schyns - 1991 - Cognitive Science 15 (4):461-508.
    Previous neural network models of concept learning were mainly implemented with supervised learning schemes. However, studies of human conceptual memory have shown that concepts may be learned without a teacher who provides the category name to associate with exemplars. A modular neural network architecture that realizes concept acquisition through two functionally distinct operations, categorizing and naming, is proposed as an alternative. An unsupervised algorithm realizes the categorizing module by constructing representations of categories compatible with prototype theory. The naming (...)
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  26.  22
    Understanding the Emergence of Modularity in Neural Systems.John A. Bullinaria - 2007 - Cognitive Science 31 (4):673-695.
    Modularity in the human brain remains a controversial issue, with disagreement over the nature of the modules that exist, and why, when, and how they emerge. It is a natural assumption that modularity offers some form of computational advantage, and hence evolution by natural selection has translated those advantages into the kind of modular neural structures familiar to cognitive scientists. However, simulations of the evolution of simplified neural systems have shown that, in many cases, it is actually non-modular (...)
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  27.  68
    Imitation, Mind Reading, and Social Learning.Philip S. Gerrans - 2013 - Biological Theory 8 (1):20-27.
    Imitation has been understood in different ways: as a cognitive adaptation subtended by genetically specified cognitive mechanisms; as an aspect of domain general human cognition. The second option has been advanced by Cecilia Heyes who treats imitation as an instance of associative learning. Her argument is part of a deflationary treatment of the “mirror neuron” phenomenon. I agree with Heyes about mirror neurons but argue that Kim Sterelny has provided the tools to provide a better account of the nature (...)
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  28.  18
    Statistical models of syntax learning and use.Mark Johnson & Stefan Riezler - 2002 - Cognitive Science 26 (3):239-253.
    This paper shows how to define probability distributions over linguistically realistic syntactic structures in a way that permits us to define language learning and language comprehension as statistical problems. We demonstrate our approach using lexical‐functional grammar (LFG), but our approach generalizes to virtually any linguistic theory. Our probabilistic models are maximum entropy models. In this paper we concentrate on statistical inference procedures for learning the parameters that define these probability distributions. We point out some of the practical problems (...)
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  29.  36
    A Learning-Efficiency Explanation of Structure in Language.Andreas Blume - 2004 - Theory and Decision 57 (3):265-285.
    This paper proposes a learning-efficiency explanation of modular structure in language. An optimal grammar arises as the solution to the problem of learning a language from a minimal number of observations of instances of the use of the language. Agents face symmetry constraints that limit their ability to make a priori distinctions among symbols used in the language and among objects (interpreted as facts, events, speaker’s intentions) that are to be represented by messages in the language. It is (...)
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  30.  25
    Constraining constructivism: Cortical and sub-cortical constraints on learning in development.Steven Quartz & Terrence Sejnowski - 2000 - Behavioral and Brain Sciences 23 (5):785-791.
    It is becoming increasingly clear that acquiring cognitive skills is feasible only with significant developmental constraints. However, recent research provides the strongest evidence to date for constructivist development. Here, we examine how these two apparently conflicting perspectives may be reconciled. Specifically, we suggest that subcortical and cortical structures possess divergent developmental strategies, with many subcortical structures satisfying Fodor's criteria for modularity. These structures constitute an early behavioral system that guides the construction of later emerging cortical structures, for which there (...)
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  31.  8
    Beyond the Learning Curve: Skill Acquisition and the Construction of Mind.Craig P. Speelman & Kim Kirsner - 2005 - Oxford University Press UK.
    For years now, learning has been at the heart of research within cognitive psychology. How do we acquire new knowledge and new skills? Are the principles underlying skill acquisition unique to learning, or similar to those underlying other behaviours? Is the mental system essentially modular, or is the mental system a simple product of experience, a product that, inevitably, reflects the shape of the external world with all of its specialisms and similarities? This new book takes the view (...)
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  32.  19
    Reply to Anstotz: What we can learn from people with learning difficulties.Paula Boddington And & Tessa Podpadec - 1992 - Bioethics 6 (4):361-364.
  33.  27
    Innateness, abstract names, and syntactic cues in how children learn the meanings of words.Heidi Harley & Massimo Piattelli-Palmarini - 2001 - Behavioral and Brain Sciences 24 (6):1107-1108.
    Bloom masterfully captures the state-of-the-art in the study of lexical acquisition. He also exposes the extent of our ignorance about the learning of names for non-observables. HCLMW adopts an innatist position without adopting modularity of mind; however, it seems likely that modularity is needed to bridge the gap between object names and the rest of the lexicon.
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  34.  8
    CortexVR: Immersive analysis and training of cognitive executive functions of soccer players using virtual reality and machine learning.Christian Krupitzer, Jens Naber, Jan-Philipp Stauffert, Jan Mayer, Jan Spielmann, Paul Ehmann, Noel Boci, Maurice Bürkle, André Ho, Clemens Komorek, Felix Heinickel, Samuel Kounev, Christian Becker & Marc Erich Latoschik - 2022 - Frontiers in Psychology 13.
    GoalThis paper presents an immersive Virtual Reality system to analyze and train Executive Functions of soccer players. EFs are important cognitive functions for athletes. They are a relevant quality that distinguishes amateurs from professionals.MethodThe system is based on immersive technology, hence, the user interacts naturally and experiences a training session in a virtual world. The proposed system has a modular design supporting the extension of various so-called game modes. Game modes combine selected game mechanics with specific simulation content to target (...)
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  35.  5
    Can Mindfulness Help to Alleviate Loneliness? A Systematic Review and Meta-Analysis.Siew Li Teoh, Vengadesh Letchumanan & Learn-Han Lee - 2021 - Frontiers in Psychology 12.
    Objective: Mindfulness-based intervention has been proposed to alleviate loneliness and improve social connectedness. Several randomized controlled trials have been conducted to evaluate the effectiveness of MBI. This study aimed to critically evaluate and determine the effectiveness and safety of MBI in alleviating the feeling of loneliness.Methods: We searched Medline, Embase, PsycInfo, Cochrane CENTRAL, and AMED for publications from inception to May 2020. We included RCTs with human subjects who were enrolled in MBI with loneliness as an outcome. The quality of (...)
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  36. Relational learning re-examined.Chris Thornton & Andy Clark - 1997 - Behavioral and Brain Sciences 20 (1):83-83.
    We argue that existing learning algorithms are often poorly equipped to solve problems involving a certain type of important and widespread regularity that we call “type-2 regularity.” The solution in these cases is to trade achieved representation against computational search. We investigate several ways in which such a trade-off may be pursued including simple incremental learning, modular connectionism, and the developmental hypothesis of “representational redescription.”.
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  37.  84
    The Leabra architecture: Specialization without modularity.Alexander A. Petrov, David J. Jilk, Randall C. O'Reilly & Michael L. Anderson - 2010 - Behavioral and Brain Sciences 33 (4):286-287.
    The posterior cortex, hippocampus, and prefrontal cortex in the Leabra architecture are specialized in terms of various neural parameters, and thus are predilections for learning and processing, but domain-general in terms of cognitive functions such as face recognition. Also, these areas are not encapsulated and violate Fodorian criteria for modularity. Anderson's terminology obscures these important points, but we applaud his overall message.
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  38. Direct and indirect measures of statistical learning.Arnaud Destrebecqz [And Others] - 2015 - In Morten Overgaard (ed.), Behavioral Methods in Consciousness Research. Oxford, United Kingdom: Oxford University Press.
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  39.  42
    No (social) construction without (meta-)representation: Modular mechanisms as a basis for the capacity to acquire an understanding of mind.Tim P. German & Alan M. Leslie - 2004 - Behavioral and Brain Sciences 27 (1):106-107.
    Theories that propose a modular basis for developing a “theory of mind” have no problem accommodating social interaction or social environment factors into either the learning process, or into the genotypes underlying the growth of the neurocognitive modules. Instead, they can offer models which constrain and hence explain the mechanisms through which variations in social interaction affect development. Cognitive models of both competence and performance are critical to evaluating the basis of correlations between variations in social interaction and performance (...)
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  40.  18
    A neuropsychological theory of multiple systems in category learning.F. Gregory Ashby, Leola A. Alfonso-Reese, And U. Turken & Elliott M. Waldron - 1998 - Psychological Review 105 (3):442-481.
  41.  91
    How are Australian higher education institutions contributing to innovative teaching and learning through virtual worlds?Brent Gregory, Sue Gregory, Bogdanovych A., Jacobson Michael, Newstead Anne & Simeon Simoff and Many Others - 2011 - In Gregory Sue (ed.), Proceedings of Ascilite 2011 (Australian Society of Computers in Tertiary Education). Ascilite.
    Over the past decade, teaching and learning in virtual worlds has been at the forefront of many higher education institutions around the world. The DEHub Virtual Worlds Working Group (VWWG) consisting of Australian and New Zealand higher education academics was formed in 2009. These educators are investigating the role that virtual worlds play in the future of education and actively changing the direction of their own teaching practice and curricula. 47 academics reporting on 28 Australian higher education institutions present (...)
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  42.  12
    Enforcing ethical goals over reinforcement-learning policies.Guido Governatori, Agata Ciabattoni, Ezio Bartocci & Emery A. Neufeld - 2022 - Ethics and Information Technology 24 (4):1-19.
    Recent years have yielded many discussions on how to endow autonomous agents with the ability to make ethical decisions, and the need for explicit ethical reasoning and transparency is a persistent theme in this literature. We present a modular and transparent approach to equip autonomous agents with the ability to comply with ethical prescriptions, while still enacting pre-learned optimal behaviour. Our approach relies on a normative supervisor module, that integrates a theorem prover for defeasible deontic logic within the control loop (...)
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  43. IT Project Portfolio Management: Modularity Problems in a Public Organization.Lars Kristian Hansen and Shegaw Anagaw Mengiste - 2014 - Iris 35.
     
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  44.  31
    Challenges in Education: A Deweyan Assessment of AI Technologies in the Classroom.Ande Eitner - 2023 - Education and Culture 38 (1):26-38.
    Abstract:Artificial intelligence is profoundly transforming the world in various spheres and already finding its way into educational institutions. This essay aims to examine whether the Deweyan ideal of education can be achieved through such digital means. By analyzing how both the aims and means of education, as defined by Dewey, can be understood in the context of learning with artificial intelligence, the inherent differences of both educational approaches are brought out. It becomes apparent that important concepts that characterize successful (...)
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  45.  20
    Two Forms of Sequential Implicit Learning.Carol A. Seger - 1997 - Consciousness and Cognition 6 (1):108-131.
    A serial reaction time experiment tested the hypothesis that there are two independent forms of implicit learning: learning that is linked to making judgments about stimuli, and learning that is linked to motor processing. Participants performed 2, 6, or 12 blocks of single task SRT, dual task SRT, or observation with one of five sequences; each sequence had the same underlying structure. Participants then performed two implicit tests, SRT and pattern judgment, as well as a generation test (...)
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  46.  10
    Perceived Mental Workload Classification Using Intermediate Fusion Multimodal Deep Learning.Tenzing C. Dolmans, Mannes Poel, Jan-Willem J. R. van ’T. Klooster & Bernard P. Veldkamp - 2021 - Frontiers in Human Neuroscience 14.
    A lot of research has been done on the detection of mental workload using various bio-signals. Recently, deep learning has allowed for novel methods and results. A plethora of measurement modalities have proven to be valuable in this task, yet studies currently often only use a single modality to classify MWL. The goal of this research was to classify perceived mental workload using a deep neural network that flexibly makes use of multiple modalities, in order to allow for feature (...)
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  47.  63
    How to Learn Multiple Tasks.Raffaele Calabretta, Andrea Ferdinanddio, Domenico Parisi & Frank C. Keil - 2008 - Biological Theory 3 (1):30-41.
    The article examines the question of how learning multiple tasks interacts with neural architectures and the flow of information through those architectures. It approaches the question by using the idealization of an artificial neural network where it is possible to ask more precise questions about the effects of modular versus nonmodular architectures as well as the effects of sequential versus simultaneous learning of tasks. A prior work has demonstrated a clear advantage of modular architectures when the two tasks (...)
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  48.  7
    Mechanisms of Human Motor Learning Do Not Function Independently.Amanda S. Therrien & Aaron L. Wong - 2022 - Frontiers in Human Neuroscience 15.
    Human motor learning is governed by a suite of interacting mechanisms each one of which modifies behavior in distinct ways and rely on different neural circuits. In recent years, much attention has been given to one type of motor learning, called motor adaptation. Here, the field has generally focused on the interactions of three mechanisms: sensory prediction error SPE-driven, explicit, and reinforcement learning. Studies of these mechanisms have largely treated them as modular, aiming to model how the (...)
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  49.  13
    What Determines Visual Statistical Learning Performance? Insights From Information Theory.Noam Siegelman, Louisa Bogaerts & Ram Frost - 2019 - Cognitive Science 43 (12):e12803.
    In order to extract the regularities underlying a continuous sensory input, the individual elements constituting the stream have to be encoded and their transitional probabilities (TPs) should be learned. This suggests that variance in statistical learning (SL) performance reflects efficiency in encoding representations as well as efficiency in detecting their statistical properties. These processes have been taken to be independent and temporally modular, where first, elements in the stream are encoded into internal representations, and then the co‐occurrences between them (...)
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  50. Connectionism, modularity, and tacit knowledge.Martin Davies - 1989 - British Journal for the Philosophy of Science 40 (December):541-55.
    In this paper, I define tacit knowledge as a kind of causal-explanatory structure, mirroring the derivational structure in the theory that is tacitly known. On this definition, tacit knowledge does not have to be explicitly represented. I then take the notion of a modular theory, and project the idea of modularity to several different levels of description: in particular, to the processing level and the neurophysiological level. The fundamental description of a connectionist network lies at a level between the (...)
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