Results for ' distributed learning'

987 found
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  1. Distributed learning: Educating and assessing extended cognitive systems.Richard Heersmink & Simon Knight - 2018 - Philosophical Psychology 31 (6):969-990.
    Extended and distributed cognition theories argue that human cognitive systems sometimes include non-biological objects. On these views, the physical supervenience base of cognitive systems is thus not the biological brain or even the embodied organism, but an organism-plus-artifacts. In this paper, we provide a novel account of the implications of these views for learning, education, and assessment. We start by conceptualising how we learn to assemble extended cognitive systems by internalising cultural norms and practices. Having a better grip (...)
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  2.  7
    Distributional learning of speech sound categories is gated by sensitive periods.Rebecca K. Reh, Takao K. Hensch & Janet F. Werker - 2021 - Cognition 213 (C):104653.
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  3.  27
    Distributed learning and mutual adaptation.Daniel L. Schwartz & Taylor Martin - 2006 - Pragmatics and Cognition 14 (2):313-332.
    If distributed cognition is to become a general analytic frame, it needs to handle more aspects of cognition than just highly efficient problem solving. It should also handle learning. We identify four classes of distributed learning: induction, repurposing, symbiotic tuning, and mutual adaptation. The four classes of distributed learning fit into a two-dimensional space defined by the stability and adaptability of individuals and their environments. In all four classes of learning, people and their (...)
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  4.  10
    Distributed learning and mutual adaptation.Daniel L. Schwartz & Taylor Martin - 2006 - Pragmatics and Cognition 14 (2):313-332.
    If distributed cognition is to become a general analytic frame, it needs to handle more aspects of cognition than just highly efficient problem solving. It should also handle learning. We identify four classes of distributed learning: induction, repurposing, symbiotic tuning, and mutual adaptation. The four classes of distributed learning fit into a two-dimensional space defined by the stability and adaptability of individuals and their environments. In all four classes of learning, people and their (...)
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  5.  56
    Physically distributed learning: Adapting and reinterpreting physical environments in the development of fraction concepts.Taylor Martin & Daniel L. Schwartz - 2005 - Cognitive Science 29 (4):587-625.
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  6.  4
    Feature distribution learning by passive exposure.David Pascucci, Gizay Ceylan & Árni Kristjánsson - 2022 - Cognition 227 (C):105211.
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  7.  19
    Distributional learning has immediate and long-lasting effects.Paola Escudero & Daniel Williams - 2014 - Cognition 133 (2):408-413.
  8.  8
    Distributed Learning in the Classroom: Effects of Rereading Schedules Depend on Time of Test.Carla E. Greving & Tobias Richter - 2019 - Frontiers in Psychology 9.
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  9.  31
    Semantic Coherence Facilitates Distributional Learning.Ouyang Long, Boroditsky Lera & C. Frank Michael - 2017 - Cognitive Science 41 (S4):855-884.
    Computational models have shown that purely statistical knowledge about words’ linguistic contexts is sufficient to learn many properties of words, including syntactic and semantic category. For example, models can infer that “postman” and “mailman” are semantically similar because they have quantitatively similar patterns of association with other words. In contrast to these computational results, artificial language learning experiments suggest that distributional statistics alone do not facilitate learning of linguistic categories. However, experiments in this paradigm expose participants to entirely (...)
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  10.  15
    Observed effects of “distributional learning” may not relate to the number of peaks. A test of “dispersion” as a confounding factor.Karin Wanrooij, Paul Boersma & Titia Benders - 2015 - Frontiers in Psychology 6.
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  11. The nature of distributed learning and remembering.A. Iran-Nejad & A. Homaifar - 2000 - Journal of Mind and Behavior 21 (1-2):153-183.
    Researchers have held different views on what role the nervous system should play in the study of psychological phenomena. By far, the most informative line of research in the area has been conducted by Lashley whose work has opened our eyes to the possibility that learning and remembering are unexplainable in terms of the storage and retrieval of specific traces. However, with this exception, the twentieth century is likely to be remembered as an era during which the brain has (...)
     
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  12.  16
    Naïve Learners Show Cross-Domain Transfer after Distributional Learning: The Case of Lexical and Musical Pitch.Jia Hoong Ong, Denis Burnham, Catherine J. Stevens & Paola Escudero - 2016 - Frontiers in Psychology 7.
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  13.  17
    Distributed Practice: Rarely Realized in Self-Regulated Mathematical Learning.Katharina Barzagar Nazari & Mirjam Ebersbach - 2018 - Frontiers in Psychology 9.
    The purpose of the present study was to investigate the effect and use of distributed practice in the context of self-regulated mathematical learning in high school. With distributed practice, a fixed learning duration is spread over several sessions, whereas with massed practice, the same time is spent learning in one session. Distributed practice has been proven to be an effective tool for improving long-term retention of verbal material and simple procedural knowledge in mathematics, at (...)
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  14.  42
    Learning General Phonological Rules From Distributional Information: A Computational Model.Shira Calamaro & Gaja Jarosz - 2015 - Cognitive Science 39 (3):647-666.
    Phonological rules create alternations in the phonetic realizations of related words. These rules must be learned by infants in order to identify the phonological inventory, the morphological structure, and the lexicon of a language. Recent work proposes a computational model for the learning of one kind of phonological alternation, allophony . This paper extends the model to account for learning of a broader set of phonological alternations and the formalization of these alternations as general rules. In Experiment 1, (...)
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  15.  20
    Learning, remembering, and predicting how to use tools: Distributed neurocognitive mechanisms: Comment on Osiurak and Badets (2016).Laurel J. Buxbaum - 2017 - Psychological Review 124 (3):346-360.
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  16.  12
    The distribution of muscular action potentials during maze learning.R. S. Daniel - 1939 - Journal of Experimental Psychology 24 (6):621.
  17.  16
    Distributed practice and rote learning in concept formation.Jack Richardson & Bruce O. Bergum - 1954 - Journal of Experimental Psychology 47 (6):442.
  18.  61
    Distributed Coordination for a Class of High-Order Multiagent Systems Subject to Actuator Saturations by Iterative Learning Control.Nana Yang & Suoping Li - 2022 - Complexity 2022:1-18.
    This paper investigates a distributed coordination control for a class of high-order uncertain multiagent systems. Under the framework of iterative learning control, a novel fully distributed learning protocol is devised for the coordination problem of MASs including time-varying parameter uncertainties as well as actuator saturations. Meanwhile, the learning updating laws of various parameters are proposed. Utilizing Lyapunov theory and combining with Graph theory, the proposed algorithm can make each follower track a leader completely over a (...)
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  19.  32
    Learning Continuous Probability Distributions with Symmetric Diffusion Networks.Javier R. Movellan & James L. McClelland - 1993 - Cognitive Science 17 (4):463-496.
    In this article we present symmetric diffusion networks, a family of networks that instantiate the principles of continuous, stochastic, adaptive and interactive propagation of information. Using methods of Markovion diffusion theory, we formalize the activation dynamics of these networks and then show that they can be trained to reproduce entire multivariate probability distributions on their outputs using the contrastive Hebbion learning rule (CHL). We show that CHL performs gradient descent on an error function that captures differences between desired and (...)
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  20.  24
    Learning Integrated Structure from Distributed Databases with Overlapping Variables.David Danks - unknown
  21.  23
    Rote learning as a function of distribution of practice and the complexity of the situation.Donald A. Riley - 1952 - Journal of Experimental Psychology 43 (2):88.
  22.  22
    Learning grammatical categories from distributional cues: Flexible frames for language acquisition.Michelle C. St Clair, Padraic Monaghan & Morten H. Christiansen - 2010 - Cognition 116 (3):341-360.
  23.  28
    Doubly distributing special obligations: what professional practice can learn from parenting.Jon Tilburt & Baruch Brody - 2018 - Journal of Medical Ethics 44 (3):212-216.
    A traditional ethic of medicine asserts that physicians have special obligations to individual patients with whom they have a clinical relationship. Contemporary trends in US healthcare financing like bundled payments seem to threaten traditional conceptions of special obligations of individual physicians to individual patients because their population-based focus sets a tone that seems to emphasise responsibilities for groups of patients by groups of physicians in an organisation. Prior to undertaking a cogent debate about the fate and normative weight of special (...)
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  24.  12
    A distributional perspective on the gavagai problem in early word learning.Richard N. Aslin & Alice F. Wang - 2021 - Cognition 213 (C):104680.
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  25.  43
    Deep learning in distributed denial-of-service attacks detection method for Internet of Things networks.Salama A. Mostafa, Bashar Ahmad Khalaf, Nafea Ali Majeed Alhammadi, Ali Mohammed Saleh Ahmed & Firas Mohammed Aswad - 2023 - Journal of Intelligent Systems 32 (1).
    With the rapid growth of informatics systems’ technology in this modern age, the Internet of Things (IoT) has become more valuable and vital to everyday life in many ways. IoT applications are now more popular than they used to be due to the availability of many gadgets that work as IoT enablers, including smartwatches, smartphones, security cameras, and smart sensors. However, the insecure nature of IoT devices has led to several difficulties, one of which is distributed denial-of-service (DDoS) attacks. (...)
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  26.  16
    Distributed practice in motor learning: progressively increasing and decreasing rests.Barbara S. Cook & Ernest R. Hilgard - 1949 - Journal of Experimental Psychology 39 (2):169.
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  27.  42
    Doubly distributing special obligations: what professional practice can learn from parenting.Jon Tilburt & Baruch Brody - 2016 - Journal of Medical Ethics:medethics-2015-103071.
    A traditional ethic of medicine asserts that physicians have special obligations to individual patients with whom they have a clinical relationship. Contemporary trends in US healthcare financing like bundled payments seem to threaten traditional conceptions of special obligations of individual physicians to individual patients because their population-based focus sets a tone that seems to emphasise responsibilities for groups of patients by groups of physicians in an organisation. Prior to undertaking a cogent debate about the fate and normative weight of special (...)
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  28.  27
    Maze learning of mature-young and aged rats as a function of distribution of practice.Charles L. Goodrick - 1973 - Journal of Experimental Psychology 98 (2):344.
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  29.  18
    Distributed practice in verbal learning and the maturation hypothesis.Susan T. H. Wright & Donald W. Taylor - 1949 - Journal of Experimental Psychology 39 (4):527.
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  30.  13
    Distributed practice in motor learning: score changes within and between daily sessions.E. R. Hilgard & M. B. Smith - 1942 - Journal of Experimental Psychology 30 (2):136.
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  31.  43
    Learning relative frequency distributions: Some perceptual and cognitive factors.Charles A. Vlek & Hans H. Werner - 1973 - Journal of Experimental Psychology 100 (1):106.
  32.  8
    School-Aged Children Learn Novel Categories on the Basis of Distributional Information.Iris Broedelet, Paul Boersma & Judith Rispens - 2022 - Frontiers in Psychology 12.
    Categorization of sensory stimuli is a vital process in understanding the world. In this paper we show that distributional learning plays a role in learning novel object categories in school-aged children. An 11-step continuum was constructed based on two novel animate objects by morphing one object into the other in 11 equal steps. Forty-nine children were subjected to one of two familiarization conditions during which they saw tokens from the continuum. The conditions differed in the position of the (...)
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  33.  33
    Integrating experiential and distributional data to learn semantic representations.Mark Andrews, Gabriella Vigliocco & David Vinson - 2009 - Psychological Review 116 (3):463-498.
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  34.  8
    Deep learning technology of Internet of Things Blockchain in distribution network faults.Chuncheng Shi, Rui Li & Hong Zhang - 2022 - Journal of Intelligent Systems 31 (1):965-978.
    Nowadays, the development of human society and daily life are inseparable from the power supply. Therefore, people also put forward higher requirements for the reliability of distribution network, but power companies can only passively deal with distribution network failures, which is a bottleneck for the improvement of distribution network reliability. The Internet of Things is the best solution for online equipment status monitoring and basic data sharing for large, widely distributed, relatively fixed, and large numbers of equipment. The construction (...)
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  35.  15
    Lexical distributional cues, but not situational cues, are readily used to learn abstract locative verb-structure associations.Katherine E. Twomey, Franklin Chang & Ben Ambridge - 2016 - Cognition 153 (C):124-139.
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  36. Reflection as a Deliberative and Distributed Practice: Assessing Neuro-Enhancement Technologies via Mutual Learning Exercises.Hub Zwart, Jonna Brenninkmeijer, Peter Eduard, Lotte Krabbenborg, Sheena Laursen, Gema Revuelta & Winnie Toonders - 2017 - NanoEthics 11 (2):127-138.
    In 1968, Jürgen Habermas claimed that, in an advanced technological society, the emancipatory force of knowledge can only be regained by actively recovering the ‘forgotten experience of reflection’. In this article, we argue that, in the contemporary situation, critical reflection requires a deliberative ambiance, a process of mutual learning, a consciously organised process of deliberative and distributed reflection. And this especially applies, we argue, to critical reflection concerning a specific subset of technologies which are actually oriented towards optimising (...)
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  37.  16
    The distribution of recalled items in simultaneous intentional and incidental learning.Arnold Mechanic - 1962 - Journal of Experimental Psychology 63 (6):593.
  38.  56
    The evolution of frequency distributions: Relating regularization to inductive biases through iterated learning.Florencia Reali & Thomas L. Griffiths - 2009 - Cognition 111 (3):317-328.
  39.  4
    Learning from others: Exchange of classification rules in intelligent distributed systems.Dominik Fisch, Martin Jänicke, Edgar Kalkowski & Bernhard Sick - 2012 - Artificial Intelligence 187-188 (C):90-114.
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  40.  11
    Distributed web hacking by adaptive consensus-based reinforcement learning.Nemanja Ilić, Dejan Dašić, Miljan Vučetić, Aleksej Makarov & Ranko Petrović - 2024 - Artificial Intelligence 326 (C):104032.
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  41. E-learning and distributed collaborative environment based on WEB3D.Marek Kovac & Martin Sperka - 2006 - Communication and Cognition. Monographies 39 (1-2):61-73.
     
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  42.  70
    Online Supervised Learning with Distributed Features over Multiagent System.Xibin An, Bing He, Chen Hu & Bingqi Liu - 2020 - Complexity 2020:1-10.
    Most current online distributed machine learning algorithms have been studied in a data-parallel architecture among agents in networks. We study online distributed machine learning from a different perspective, where the features about the same samples are observed by multiple agents that wish to collaborate but do not exchange the raw data with each other. We propose a distributed feature online gradient descent algorithm and prove that local solution converges to the global minimizer with a sublinear (...)
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  43.  20
    Learning Random Walk Models for Inducing Word Dependency Distributions.Christopher D. Manning & Kristina Toutanova - unknown
    Many NLP tasks rely on accurately estimating word dependency probabilities P(w1|w2), where the words w1 and w2 have a particular relationship (such as verb-object). Because of the sparseness of counts of such dependencies, smoothing and the ability to use multiple sources of knowledge are important challenges. For example, if the probability P(N |V ) of noun N being the subject of verb V is high, and V takes similar objects to V , and V is synonymous to V , then (...)
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  44.  10
    Remedial Teaching and Learning From a Cognitive Diagnostic Model Perspective: Taking the Data Distribution Characteristics as an Example.He Ren, Ningning Xu, Yuxiang Lin, Shumei Zhang & Tao Yang - 2021 - Frontiers in Psychology 12.
    In response to the big data era trend, statistics has become an indispensable part of mathematics education in junior high school. In this study, a pre-test and a post-test were developed for the six attributes of the data distribution characteristic. This research then used the cognitive diagnosis model to learn about the poorly mastered attributes and to verify whether cognitive diagnosis can be used for targeted intervention to improve students' abilities effectively. One hundred two eighth graders participated in the experiment (...)
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  45.  17
    Learning different light prior distributions for different contexts.Iona S. Kerrigan & Wendy J. Adams - 2013 - Cognition 127 (1):99-104.
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  46.  17
    Massed and distributed item repetition in verbal discrimination learning.Donald S. Ciccone - 1973 - Journal of Experimental Psychology 101 (2):396.
  47. Learning and unlearning in distributed memory models.S. Lewandowsky, Rp Goebel & Bb Murdock - 1990 - Bulletin of the Psychonomic Society 28 (6):486-486.
  48.  9
    Reminiscence in motor learning as a function of prerest distribution of practice.Benjamin H. Pubols - 1960 - Journal of Experimental Psychology 60 (3):155.
  49.  11
    A comparison of distributed machine learning methods for the support of “many labs” collaborations in computational modeling of decision making.Lili Zhang, Himanshu Vashisht, Andrey Totev, Nam Trinh & Tomas Ward - 2022 - Frontiers in Psychology 13.
    Deep learning models are powerful tools for representing the complex learning processes and decision-making strategies used by humans. Such neural network models make fewer assumptions about the underlying mechanisms thus providing experimental flexibility in terms of applicability. However, this comes at the cost of involving a larger number of parameters requiring significantly more data for effective learning. This presents practical challenges given that most cognitive experiments involve relatively small numbers of subjects. Laboratory collaborations are a natural way (...)
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  50.  10
    A nonmonotonic effect of distribution of trials in retardate learning and memory.Richard D. Sperber, Daryl B. Greenfield & Betty J. House - 1973 - Journal of Experimental Psychology 99 (2):186.
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