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  1. The Ups and Downs of Black and White: Do Sensorimotor Metaphors Reflect an Evolved Perceptual Interface?Tina O. Zhu, Peiyao Chen & Frank H. Durgin - 2024 - Metaphor and Symbol 39 (3):169-182.
    The Implicit Association Test (IAT) was used to measure population levels of conceptual alignment among two polar sensory metaphors and clusters of concepts to which they are commonly applied. A total of 873 participants were tested online, to compare within- and between-cluster alignments of concepts associated with two different polar sensory metaphors (up/down and black/white). IAT results were sensitive to semantic alignments that were also picked up by Latent Semantic Analysis (LSA) using a large-scale corpus of English. However, even with (...)
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  • Raising the Roof: Situating Verbs in Symbolic and Embodied Language Processing.John Hollander & Andrew Olney - 2024 - Cognitive Science 48 (4):e13442.
    Recent investigations on how people derive meaning from language have focused on task‐dependent shifts between two cognitive systems. The symbolic (amodal) system represents meaning as the statistical relationships between words. The embodied (modal) system represents meaning through neurocognitive simulation of perceptual or sensorimotor systems associated with a word's referent. A primary finding of literature in this field is that the embodied system is only dominant when a task necessitates it, but in certain paradigms, this has only been demonstrated using nouns (...)
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  • Determining the Relativity of Word Meanings Through the Construction of Individualized Models of Semantic Memory.Brendan T. Johns - 2024 - Cognitive Science 48 (2):e13413.
    Distributional models of lexical semantics are capable of acquiring sophisticated representations of word meanings. The main theoretical insight provided by these models is that they demonstrate the systematic connection between the knowledge that people acquire and the experience that they have with the natural language environment. However, linguistic experience is inherently variable and differs radically across people due to demographic and cultural variables. Recently, distributional models have been used to examine how word meanings vary across languages and it was found (...)
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  • Does ChatGPT have semantic understanding?Lisa Miracchi Titus - 2024 - Cognitive Systems Research 83 (101174):1-13.
    Over the last decade, AI models of language and word meaning have been dominated by what we might call a statistics-of-occurrence, strategy: these models are deep neural net structures that have been trained on a large amount of unlabeled text with the aim of producing a model that exploits statistical information about word and phrase co-occurrence in order to generate behavior that is similar to what a human might produce, or representations that can be probed to exhibit behavior similar to (...)
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  • Does the mind care about whether a word is abstract or concrete? Why concreteness is probably not a natural kind.Guido Löhr - 2024 - Mind and Language 39 (5):627-646.
    Many psychologists currently assume that there is a psychologically real distinction to be made between concepts that are abstract and concepts that are concrete. It is for example largely agreed that concepts and words are more easily processed if they are concrete. Moreover, it is assumed that this is because these words and concepts are concrete. It is thought that interesting generalizations can be made about certain concepts because they are concrete. I argue that we have surprisingly little reason to (...)
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  • A chimpanzee by any other name: The contributions of utterance context and information density on word choice.Cassandra L. Jacobs & Maryellen C. MacDonald - 2023 - Cognition 230 (C):105265.
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  • Exploring Patterns of Stability and Change in Caregivers' Word Usage Across Early Childhood.Hang Jiang, Michael C. Frank, Vivek Kulkarni & Abdellah Fourtassi - 2022 - Cognitive Science 46 (7):e13177.
    The linguistic input children receive across early childhood plays a crucial role in shaping their knowledge about the world. To study this input, researchers have begun applying distributional semantic models to large corpora of child‐directed speech, extracting various patterns of word use/co‐occurrence. Previous work using these models has not measured how these patterns may change throughout development, however. In this work, we leverage natural language processing methods—originally developed to study historical language change—to compare caregivers' use of words when talking to (...)
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  • Similarity Judgment Within and Across Categories: A Comprehensive Model Comparison.Russell Richie & Sudeep Bhatia - 2021 - Cognitive Science 45 (8):e13030.
    Similarity is one of the most important relations humans perceive, arguably subserving category learning and categorization, generalization and discrimination, judgment and decision making, and other cognitive functions. Researchers have proposed a wide range of representations and metrics that could be at play in similarity judgment, yet have not comprehensively compared the power of these representations and metrics for predicting similarity within and across different semantic categories. We performed such a comparison by pairing nine prominent vector semantic representations with seven established (...)
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  • Reevaluating the Influence of Leaders Under Proportional Representation: Quantitative Analysis of Text in an Electoral Experiment.Annika Fredén & Sverker Sikström - 2021 - Frontiers in Psychology 12.
    We propose that leaders play a more important role in voters’ party sympathy in proportional representation systems than previous research has suggested. Voters, from the 2018 Swedish General Election, were in an experiment asked to describe leaders and parties with three indicative keywords. Statistical models were conducted on these text data to predict their vote choice. The results show that despite that the voters vote for a party, the descriptions of leaders predicted vote choice to a similar extent as descriptions (...)
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  • Words with Consistent Diachronic Usage Patterns are Learned Earlier: A Computational Analysis Using Temporally Aligned Word Embeddings.Giovanni Cassani, Federico Bianchi & Marco Marelli - 2021 - Cognitive Science 45 (4):e12963.
    In this study, we use temporally aligned word embeddings and a large diachronic corpus of English to quantify language change in a data-driven, scalable way, which is grounded in language use. We show a unique and reliable relation between measures of language change and age of acquisition (AoA) while controlling for frequency, contextual diversity, concreteness, length, dominant part of speech, orthographic neighborhood density, and diachronic frequency variation. We analyze measures of language change tackling both the change in lexical representations and (...)
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  • Modeling the interaction of computer errors by four-valued contaminating logics.Roberto Ciuni, Thomas Macaulay Ferguson & Damian Szmuc - 2019 - In Rosalie Iemhoff, Michael Moortgat & Ruy de Queiroz (eds.), Logic, Language, Information, and Computation. Folli Publications on Logic, Language and Information. pp. 119-139.
    Logics based on weak Kleene algebra (WKA) and related structures have been recently proposed as a tool for reasoning about flaws in computer programs. The key element of this proposal is the presence, in WKA and related structures, of a non-classical truth-value that is “contaminating” in the sense that whenever the value is assigned to a formula ϕ, any complex formula in which ϕ appears is assigned that value as well. Under such interpretations, the contaminating states represent occurrences of a (...)
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  • Finding event structure in time: What recurrent neural networks can tell us about event structure in mind.Forrest Davis & Gerry T. M. Altmann - 2021 - Cognition 213 (C):104651.
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  • A probabilistic approach to solving crossword puzzles.Michael L. Littman, Greg A. Keim & Noam Shazeer - 2002 - Artificial Intelligence 134 (1-2):23-55.
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  • Analyzing Machine‐Learned Representations: A Natural Language Case Study.Ishita Dasgupta, Demi Guo, Samuel J. Gershman & Noah D. Goodman - 2020 - Cognitive Science 44 (12):e12925.
    As modern deep networks become more complex, and get closer to human‐like capabilities in certain domains, the question arises as to how the representations and decision rules they learn compare to the ones in humans. In this work, we study representations of sentences in one such artificial system for natural language processing. We first present a diagnostic test dataset to examine the degree of abstract composable structure represented. Analyzing performance on these diagnostic tests indicates a lack of systematicity in representations (...)
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  • A Principled Approach to Feature Selection in Models of Sentence Processing.Garrett Smith & Shravan Vasishth - 2020 - Cognitive Science 44 (12):e12918.
    Among theories of human language comprehension, cue‐based memory retrieval has proven to be a useful framework for understanding when and how processing difficulty arises in the resolution of long‐distance dependencies. Most previous work in this area has assumed that very general retrieval cues like [+subject] or [+singular] do the work of identifying (and sometimes misidentifying) a retrieval target in order to establish a dependency between words. However, recent work suggests that general, handpicked retrieval cues like these may not be enough (...)
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  • Quantifying the Interplay of Semantics and Phonology During Failures of Word Retrieval by People With Aphasia Using a Multiplex Lexical Network.Nichol Castro, Massimo Stella & Cynthia S. Q. Siew - 2020 - Cognitive Science 44 (9):e12881.
    Investigating instances where lexical selection fails can lead to deeper insights into the cognitive machinery and architecture supporting successful word retrieval and speech production. In this paper, we used a multiplex lexical network approach that combines semantic and phonological similarities among words to model the structure of the mental lexicon. Network measures at different levels of analysis (degree, network distance, and closeness centrality) were used to investigate the influence of network structure on picture naming accuracy and errors by people with (...)
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  • Learning the generative principles of a symbol system from limited examples.Lei Yuan, Violet Xiang, David Crandall & Linda Smith - 2020 - Cognition 200 (C):104243.
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  • Trust and Distrust as Artifacts of Language: A Latent Semantic Approach to Studying Their Linguistic Correlates.David Gefen, Jorge E. Fresneda & Kai R. Larsen - 2020 - Frontiers in Psychology 11.
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  • The Role of Negative Information in Distributional Semantic Learning.Brendan T. Johns, Douglas J. K. Mewhort & Michael N. Jones - 2019 - Cognitive Science 43 (5):e12730.
    Distributional models of semantics learn word meanings from contextual co‐occurrence patterns across a large sample of natural language. Early models, such as LSA and HAL (Landauer & Dumais, 1997; Lund & Burgess, 1996), counted co‐occurrence events; later models, such as BEAGLE (Jones & Mewhort, 2007), replaced counting co‐occurrences with vector accumulation. All of these models learned from positive information only: Words that occur together within a context become related to each other. A recent class of distributional models, referred to as (...)
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  • Modeling Recognition Memory Using the Similarity Structure of Natural Input.Joyca P. W. Lacroix, Jaap M. J. Murre, Eric O. Postma & H. Jaap van den Herik - 2006 - Cognitive Science 30 (1):121-145.
    The natural input memory (NIM) model is a new model for recognition memory that operates on natural visual input. A biologically informed perceptual preprocessing method takes local samples (eye fixations) from a natural image and translates these into a feature‐vector representation. During recognition, the model compares incoming preprocessed natural input to stored representations. By complementing the recognition memory process with a perceptual front end, the NIM model is able to make predictions about memorability based directly on individual natural stimuli. We (...)
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  • Simple Co‐Occurrence Statistics Reproducibly Predict Association Ratings.Markus J. Hofmann, Chris Biemann, Chris Westbury, Mariam Murusidze, Markus Conrad & Arthur M. Jacobs - 2018 - Cognitive Science 42 (7):2287-2312.
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  • Editors' Introduction: Abstract Concepts: Structure, Processing, and Modeling.Marianna Bolognesi & Gerard Steen - 2018 - Topics in Cognitive Science 10 (3):490-500.
    Our ability to deal with abstract concepts is one of the most intriguing faculties of human cognition. Still, we know little about how such concepts are formed, processed, and represented in mind. Current views are presented in their most recent and advanced form in this special issue, and directly compared and discussed in a lively debate, reported at the end of each chapter. The main results are reported in the editors’ introduction.
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  • Naturalistic multiattribute choice.Sudeep Bhatia & Neil Stewart - 2018 - Cognition 179 (C):71-88.
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  • Concepts, control, and context: A connectionist account of normal and disordered semantic cognition.Paul Hoffman, James L. McClelland & Matthew A. Lambon Ralph - 2018 - Psychological Review 125 (3):293-328.
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  • Multi-level computational methods for interdisciplinary research in the HathiTrust Digital Library.Jaimie Murdock, Colin Allen, Katy Börner, Robert Light, Simon McAlister, Andrew Ravenscroft, Robert Rose, Doori Rose, Jun Otsuka, David Bourget, John Lawrence & Chris Reed - 2017 - PLoS ONE 12 (9).
    We show how faceted search using a combination of traditional classification systems and mixed-membership topic models can go beyond keyword search to inform resource discovery, hypothesis formulation, and argument extraction for interdisciplinary research. Our test domain is the history and philosophy of scientific work on animal mind and cognition. The methods can be generalized to other research areas and ultimately support a system for semi-automatic identification of argument structures. We provide a case study for the application of the methods to (...)
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  • A Large‐Scale Analysis of Variance in Written Language.Brendan T. Johns & Randall K. Jamieson - 2018 - Cognitive Science 42 (4):1360-1374.
    The collection of very large text sources has revolutionized the study of natural language, leading to the development of several models of language learning and distributional semantics that extract sophisticated semantic representations of words based on the statistical redundancies contained within natural language. The models treat knowledge as an interaction of processing mechanisms and the structure of language experience. But language experience is often treated agnostically. We report a distributional semantic analysis that shows written language in fiction books varies appreciably (...)
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  • Integrated, Not Isolated: Defining Typological Proximity in an Integrated Multilingual Architecture.Michael T. Putnam, Matthew Carlson & David Reitter - 2018 - Frontiers in Psychology 8:291536.
    On the surface, bi- and multilingualism would seem to be an ideal context for exploring questions of typological proximity. The obvious intuition is that the more closely related two languages are, the easier it should be to implement the two languages in one mind. This is the starting point adopted here, but we immediately run into the difficulty that the overwhelming majority of cognitive, computational, and linguistic research on bi- and multilingualism exhibits a monolingual bias (i.e., where monolingual grammars are (...)
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  • Symbol Grounding Without Direct Experience: Do Words Inherit Sensorimotor Activation From Purely Linguistic Context?Fritz Günther, Carolin Dudschig & Barbara Kaup - 2018 - Cognitive Science 42 (S2):336-374.
    Theories of embodied cognition assume that concepts are grounded in non-linguistic, sensorimotor experience. In support of this assumption, previous studies have shown that upwards response movements are faster than downwards movements after participants have been presented with words whose referents are typically located in the upper vertical space. This is taken as evidence that processing these words reactivates sensorimotor experiential traces. This congruency effect was also found for novel words, after participants learned these words as labels for novel objects that (...)
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  • Multimodal Word Meaning Induction From Minimal Exposure to Natural Text.Angeliki Lazaridou, Marco Marelli & Marco Baroni - 2017 - Cognitive Science 41 (S4):677-705.
    By the time they reach early adulthood, English speakers are familiar with the meaning of thousands of words. In the last decades, computational simulations known as distributional semantic models have demonstrated that it is possible to induce word meaning representations solely from word co-occurrence statistics extracted from a large amount of text. However, while these models learn in batch mode from large corpora, human word learning proceeds incrementally after minimal exposure to new words. In this study, we run a set (...)
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  • A context maintenance and retrieval model of organizational processes in free recall.Sean M. Polyn, Kenneth A. Norman & Michael J. Kahana - 2009 - Psychological Review 116 (1):129-156.
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  • Word learning as Bayesian inference.Fei Xu & Joshua B. Tenenbaum - 2007 - Psychological Review 114 (2):245-272.
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  • A multinomial model for short-term priming in word identification.Roger Ratcliff & Gail McKoon - 2001 - Psychological Review 108 (4):835-846.
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  • Structure and Deterioration of Semantic Memory: A Neuropsychological and Computational Investigation.Timothy T. Rogers, Matthew A. Lambon Ralph, Peter Garrard, Sasha Bozeat, James L. McClelland, John R. Hodges & Karalyn Patterson - 2004 - Psychological Review 111 (1):205-235.
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  • The Role of Semantic Diversity in Word Recognition across Aging and Bilingualism.Brendan T. Johns, Christine L. Sheppard, Michael N. Jones & Vanessa Taler - 2016 - Frontiers in Psychology 7:195083.
    Frequency effects are pervasive in studies of language, with higher frequency words being recognized faster than lower frequency words. However, the exact nature of frequency effects has recently been questioned, with some studies finding that contextual information provides a better fit to lexical decision and naming data than word frequency ( Adelman et al., 2006 ). Recent work has cemented the importance of these results by demonstrating that a measure of the semantic diversity of the contexts that a word occurs (...)
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  • 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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  • Hands typing what hands do: Action–semantic integration dynamics throughout written verb production.Adolfo M. García & Agustín Ibáñez - 2016 - Cognition 149 (C):56-66.
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  • Anticipation in Real‐World Scenes: The Role of Visual Context and Visual Memory.Moreno I. Coco, Frank Keller & George L. Malcolm - 2016 - Cognitive Science 40 (8):1995-2024.
    The human sentence processor is able to make rapid predictions about upcoming linguistic input. For example, upon hearing the verb eat, anticipatory eye-movements are launched toward edible objects in a visual scene. However, the cognitive mechanisms that underlie anticipation remain to be elucidated in ecologically valid contexts. Previous research has, in fact, mainly used clip-art scenes and object arrays, raising the possibility that anticipatory eye-movements are limited to displays containing a small number of objects in a visually impoverished context. In (...)
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  • Quasiregularity and Its Discontents: The Legacy of the Past Tense Debate.Mark S. Seidenberg & David C. Plaut - 2014 - Cognitive Science 38 (6):1190-1228.
    Rumelhart and McClelland's chapter about learning the past tense created a degree of controversy extraordinary even in the adversarial culture of modern science. It also stimulated a vast amount of research that advanced the understanding of the past tense, inflectional morphology in English and other languages, the nature of linguistic representations, relations between language and other phenomena such as reading and object recognition, the properties of artificial neural networks, and other topics. We examine the impact of the Rumelhart and McClelland (...)
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  • Distributional structure in language: Contributions to noun–verb difficulty differences in infant word recognition.Jon A. Willits, Mark S. Seidenberg & Jenny R. Saffran - 2014 - Cognition 132 (3):429-436.
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  • (1 other version)Dynamical Models of Sentence Processing.M. Loewenstein, W. Tabor & M. K. Tanenhaus - 1999 - Cognitive Science 23 (4):491-515.
    We suggest that the theory of dynamical systems provides a revealing general framework for modeling the representations and mechanism underlying syntactic processing. We show how a particular dynamical model, the Visitation Set Gravitation model of Tabor, Juliano, and Tanenhaus (1997), develops syntactic representations and models a set of contingent frequency effects in parsing that are problematic for other models. We also present new simulations showing how the model accounts for semantic effects in parsing, and propose a new account of the (...)
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  • In defense of representation.Arthur B. Markman & Eric Dietrich - 2000 - Cognitive Psychology 40 (2):138--171.
    The computational paradigm, which has dominated psychology and artificial intelligence since the cognitive revolution, has been a source of intense debate. Recently, several cognitive scientists have argued against this paradigm, not by objecting to computation, but rather by objecting to the notion of representation. Our analysis of these objections reveals that it is not the notion of representation per se that is causing the problem, but rather specific properties of representations as they are used in various psychological theories. Our analysis (...)
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  • The symbol grounding problem has been solved. so what's next.Luc Steels - 2008 - In Manuel de Vega, Arthur M. Glenberg & Arthur C. Graesser (eds.), Symbols and embodiment: debates on meaning and cognition. New York: Oxford University Press. pp. 223--244.
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  • Is There Preferential Attachment in the Growth of Early Semantic Noun Networks?Thomas T. Hills, Mounir Maouene, Josita Maouene, Adam Sheya & Linda B. Smith - 2008 - In B. C. Love, K. McRae & V. M. Sloutsky (eds.), Proceedings of the 30th Annual Conference of the Cognitive Science Society. Cognitive Science Society.
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  • The dimensionality of language.Isidoros Doxas, Simon Dennis & William Oliver - 2007 - In McNamara D. S. & Trafton J. G. (eds.), Proceedings of the 29th Annual Cognitive Science Society. Cognitive Science Society. pp. 227--232.
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  • Modelling functional priming and the associative boost.Scott McDonald & Will Lowe - 1998 - In Morton Ann Gernsbacher & Sharon J. Derry (eds.), Proceedings of the 20th Annual Conference of the Cognitive Science Society. Lawerence Erlbaum. pp. 667--680.
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  • Learning the unlearnable: the role of missing evidence.Terry Regier & Susanne Gahl - 2004 - Cognition 93 (2):147-155.
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  • (1 other version)The Role of Functionality in the Mental Representations of Engineering Students: Some Differences in the Early Stages of Expertise.Jarrod Moss, Kenneth Kotovsky & Jonathan Cagan - 2006 - Cognitive Science 30 (1):65-93.
    As engineers gain experience and become experts in their domain, the structure and content of their knowledge changes. Two studies are presented that examine differences in knowledge representation among freshman and senior engineering students. The first study examines recall of mechanical devices and chunking of components, and the second examines whether seniors represent devices in a more abstract functional manner than do freshmen. The most prominent differences between these 2 groups involve their representation of the functioning of groups of electromechanical (...)
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  • A Memory‐Based Theory of Verbal Cognition.Simon Dennis - 2005 - Cognitive Science 29 (2):145-193.
    The syntagmatic paradigmatic model is a distributed, memory‐based account of verbal processing. Built on a Bayesian interpretation of string edit theory, it characterizes the control of verbal cognition as the retrieval of sets of syntagmatic and paradigmatic constraints from sequential and relational long‐term memory and the resolution of these constraints in working memory. Lexical information is extracted directly from text using a version of the expectation maximization algorithm. In this article, the model is described and then illustrated on a number (...)
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  • Whatever next? Predictive brains, situated agents, and the future of cognitive science.Andy Clark - 2013 - Behavioral and Brain Sciences 36 (3):181-204.
    Brains, it has recently been argued, are essentially prediction machines. They are bundles of cells that support perception and action by constantly attempting to match incoming sensory inputs with top-down expectations or predictions. This is achieved using a hierarchical generative model that aims to minimize prediction error within a bidirectional cascade of cortical processing. Such accounts offer a unifying model of perception and action, illuminate the functional role of attention, and may neatly capture the special contribution of cortical processing to (...)
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  • Tracking latent domain structures: An integration of pathfinder and Latent Semantic Analysis. [REVIEW]Chaomei Chen - 1997 - AI and Society 11 (1-2):48-62.
    Standard psychological scaling methods have been widely used as knowledge elicitation tools to uncover structural characteristics of a given domain. However, these methods traditionally rely on relatedness ratings from human experts, which is often time-consuming and tedious. We describe an integrated approach to knowledge elicitation and representation using Latent Semantic Analysis and Pathfinder Network Scaling techniques. The semantic structure of a subject domain can be automatically characterised from a collection of published documents in the domain. The method is illustrated with (...)
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