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  1. Graph‐Theoretic Properties of Networks Based on Word Association Norms: Implications for Models of Lexical Semantic Memory.Thomas M. Gruenenfelder, Gabriel Recchia, Tim Rubin & Michael N. Jones - 2016 - Cognitive Science 40 (6):1460-1495.
    We compared the ability of three different contextual models of lexical semantic memory and of a simple associative model to predict the properties of semantic networks derived from word association norms. None of the semantic models were able to accurately predict all of the network properties. All three contextual models over-predicted clustering in the norms, whereas the associative model under-predicted clustering. Only a hybrid model that assumed that some of the responses were based on a contextual model and others on (...)
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  • When pumpkin is closer to onion than to squash: The structure of the second language lexicon.Katy Borodkin, Yoed N. Kenett, Miriam Faust & Nira Mashal - 2016 - Cognition 156:60-70.
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  • Representing word meaning and order information in a composite holographic lexicon.Michael N. Jones & Douglas J. K. Mewhort - 2007 - Psychological Review 114 (1):1-37.
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  • The Cognitive Social Network in Dreams: Transitivity, Assortativity, and Giant Component Proportion Are Monotonic.Hye Joo Han, Richard Schweickert, Zhuangzhuang Xi & Charles Viau-Quesnel - 2016 - Cognitive Science 40 (3):671-696.
    For five individuals, a social network was constructed from a series of his or her dreams. Three important network measures were calculated for each network: transitivity, assortativity, and giant component proportion. These were monotonically related; over the five networks as transitivity increased, assortativity increased and giant component proportion decreased. The relations indicate that characters appear in dreams systematically. Systematicity likely arises from the dreamer's memory of people and their relations, which is from the dreamer's cognitive social network. But the dream (...)
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  • Causal Bayes nets as psychological theories of causal reasoning: evidence from psychological research.York Hagmayer - 2016 - Synthese 193 (4):1107-1126.
    Causal Bayes nets have been developed in philosophy, statistics, and computer sciences to provide a formalism to represent causal structures, to induce causal structure from data and to derive predictions. Causal Bayes nets have been used as psychological theories in at least two ways. They were used as rational, computational models of causal reasoning and they were used as formal models of mental causal models. A crucial assumption made by them is the Markov condition, which informally states that variables are (...)
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  • Becoming a written word: Eye movements reveal order of acquisition effects following incidental exposure to new words during silent reading.Holly S. S. L. Joseph, Elizabeth Wonnacott, Paul Forbes & Kate Nation - 2014 - Cognition 133 (1):238-248.
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  • Network Structure Influences Speech Production.Kit Ying Chan & Michael S. Vitevitch - 2010 - Cognitive Science 34 (4):685-697.
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  • Mapping the Structure of Semantic Memory.Ana Sofia Morais, Henrik Olsson & Lael J. Schooler - 2013 - Cognitive Science 37 (1):125-145.
    Aggregating snippets from the semantic memories of many individuals may not yield a good map of an individual’s semantic memory. The authors analyze the structure of semantic networks that they sampled from individuals through a new snowball sampling paradigm during approximately 6 weeks of 1-hr daily sessions. The semantic networks of individuals have a small-world structure with short distances between words and high clustering. The distribution of links follows a power law truncated by an exponential cutoff, meaning that most words (...)
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  • Constructing Semantic Representations From a Gradually Changing Representation of Temporal Context.Marc W. Howard, Karthik H. Shankar & Udaya K. K. Jagadisan - 2011 - Topics in Cognitive Science 3 (1):48-73.
    Computational models of semantic memory exploit information about co-occurrences of words in naturally occurring text to extract information about the meaning of the words that are present in the language. Such models implicitly specify a representation of temporal context. Depending on the model, words are said to have occurred in the same context if they are presented within a moving window, within the same sentence, or within the same document. The temporal context model (TCM), which specifies a particular definition of (...)
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  • Representing melodic relationships using network science.Hannah M. Merseal, Roger E. Beaty, Yoed N. Kenett, James Lloyd-Cox, Örjan de Manzano & Martin Norgaard - 2023 - Cognition 233 (C):105362.
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  • Quantifying flexibility in thought: The resiliency of semantic networks differs across the lifespan.Abigail L. Cosgrove, Yoed N. Kenett, Roger E. Beaty & Michele T. Diaz - 2021 - Cognition 211 (C):104631.
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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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  • Age of acquisition predicts rate of lexical evolution.Padraic Monaghan - 2014 - Cognition 133 (3):530-534.
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  • Learning novel phonological neighbors: Syntactic category matters.Isabelle Dautriche, Daniel Swingley & Anne Christophe - 2015 - Cognition 143 (C):77-86.
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  • Adaptively Rational Learning.Sarah Wellen & David Danks - 2016 - Minds and Machines 26 (1-2):87-102.
    Research on adaptive rationality has focused principally on inference, judgment, and decision-making that lead to behaviors and actions. These processes typically require cognitive representations as input, and these representations must presumably be acquired via learning. Nonetheless, there has been little work on the nature of, and justification for, adaptively rational learning processes. In this paper, we argue that there are strong reasons to believe that some learning is adaptively rational in the same way as judgment and decision-making. Indeed, overall adaptive (...)
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  • Language networks: Their structure, function, and evolution.Ricard V. Solé, Bernat Corominas-Murtra, Sergi Valverde & Luc Steels - 2010 - Complexity 15 (6):20-26.
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  • Composition in Distributional Models of Semantics.Jeff Mitchell & Mirella Lapata - 2010 - Cognitive Science 34 (8):1388-1429.
    Vector-based models of word meaning have become increasingly popular in cognitive science. The appeal of these models lies in their ability to represent meaning simply by using distributional information under the assumption that words occurring within similar contexts are semantically similar. Despite their widespread use, vector-based models are typically directed at representing words in isolation, and methods for constructing representations for phrases or sentences have received little attention in the literature. This is in marked contrast to experimental evidence (e.g., in (...)
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  • Understanding the What and When of Analogical Reasoning Across Analogy Formats: An Eye‐Tracking and Machine Learning Approach.Jean-Pierre Thibaut, Yannick Glady & Robert M. French - 2022 - Cognitive Science 46 (11):e13208.
    Starting with the hypothesis that analogical reasoning consists of a search of semantic space, we used eye-tracking to study the time course of information integration in adults in various formats of analogies. The two main questions we asked were whether adults would follow the same search strategies for different types of analogical problems and levels of complexity and how they would adapt their search to the difficulty of the task. We compared these results to predictions from the literature. Machine learning (...)
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  • The Growth of Children's Semantic and Phonological Networks: Insight From 10 Languages.Abdellah Fourtassi, Yuan Bian & Michael C. Frank - 2020 - Cognitive Science 44 (7):e12847.
    Children tend to produce words earlier when they are connected to a variety of other words along the phonological and semantic dimensions. Though these semantic and phonological connectivity effects have been extensively documented, little is known about their underlying developmental mechanism. One possibility is that learning is driven by lexical network growth where highly connected words in the child's early lexicon enable learning of similar words. Another possibility is that learning is driven by highly connected words in the external learning (...)
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  • Foraging in Semantic Fields: How We Search Through Memory.Thomas T. Hills, Peter M. Todd & Michael N. Jones - 2015 - Topics in Cognitive Science 7 (3):513-534.
    When searching for concepts in memory—as in the verbal fluency task of naming all the animals one can think of—people appear to explore internal mental representations in much the same way that animals forage in physical space: searching locally within patches of information before transitioning globally between patches. However, the definition of the patches being searched in mental space is not well specified. Do we search by activating explicit predefined categories and recall items from within that category, or do we (...)
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  • An Autocatalytic Network Model of Conceptual Change.Liane Gabora, Nicole M. Beckage & Mike Steel - 2022 - Topics in Cognitive Science 14 (1):163-188.
    Topics in Cognitive Science, Volume 14, Issue 1, Page 163-188, January 2022.
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  • Semantic Memory Search and Retrieval in a Novel Cooperative Word Game: A Comparison of Associative and Distributional Semantic Models.Abhilasha A. Kumar, Mark Steyvers & David A. Balota - 2021 - Cognitive Science 45 (10):e13053.
    Considerable work during the past two decades has focused on modeling the structure of semantic memory, although the performance of these models in complex and unconstrained semantic tasks remains relatively understudied. We introduce a two‐player cooperative word game, Connector (based on the boardgame Codenames), and investigate whether similarity metrics derived from two large databases of human free association norms, the University of South Florida norms and the Small World of Words norms, and two distributional semantic models based on large language (...)
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  • Editors' Introduction to Networks of the Mind: How Can Network Science Elucidate Our Understanding of Cognition?Thomas T. Hills & Yoed N. Kenett - 2022 - Topics in Cognitive Science 14 (1):189-208.
    Topics in Cognitive Science, Volume 14, Issue 1, Page 189-208, January 2022.
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  • The Value of Statistical Learning to Cognitive Network Science.Elisabeth A. Karuza - 2022 - Topics in Cognitive Science 14 (1):78-92.
    Topics in Cognitive Science, Volume 14, Issue 1, Page 78-92, January 2022.
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  • The relation between semantic memory structure, associative abilities, and verbal and figural creativity.Li He, Yoed N. Kenett, Kaixiang Zhuang, Cheng Liu, Rongcan Zeng, Tingrui Yan, Tengbin Huo & Jiang Qiu - 2020 - Thinking and Reasoning 27 (2):268-293.
    Research has independently highlighted the roles of semantic memory and associative abilities in creative thinking. However, it remains unclear how these two capacities relate to each other, nor ho...
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  • Opacity, obscurity, and the geometry of question-asking.Christina Boyce-Jacino & Simon DeDeo - 2020 - Cognition 196 (C):104071.
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  • Methodological Considerations for Incorporating Clinical Data Into a Network Model of Retrieval Failures.Nichol Castro - 2022 - Topics in Cognitive Science 14 (1):111-126.
    Difficulty retrieving information (e.g., words) from memory is prevalent in neurogenic communication disorders (e.g., aphasia and dementia). Theoretical modeling of retrieval failures often relies on clinical data, despite methodological limitations (e.g., locus of retrieval failure, heterogeneity of individuals, and progression of disorder/disease). Techniques from network science are naturally capable of handling these limitations. This paper reviews recent work using a multiplex lexical network to account for word retrieval failures and highlights how network science can address the limitations of clinical data. (...)
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  • Categorical structure among shared features in networks of early-learned nouns.Thomas T. Hills, Mounir Maouene, Josita Maouene, Adam Sheya & Linda Smith - 2009 - Cognition 112 (3):381-396.
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  • A Quantitative Empirical Analysis of the Abstract/Concrete Distinction.Felix Hill, Anna Korhonen & Christian Bentz - 2014 - Cognitive Science 38 (1):162-177.
    This study presents original evidence that abstract and concrete concepts are organized and represented differently in the mind, based on analyses of thousands of concepts in publicly available data sets and computational resources. First, we show that abstract and concrete concepts have differing patterns of association with other concepts. Second, we test recent hypotheses that abstract concepts are organized according to association, whereas concrete concepts are organized according to (semantic) similarity. Third, we present evidence suggesting that concrete representations are more (...)
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  • The Dynamics of Retraction in Epistemic Networks.Travis LaCroix, Anders Geil & Cailin O’Connor - 2021 - Philosophy of Science 88 (3):415-438.
    Sometimes retracted or refuted scientific information is used and propagated long after it is understood to be misleading. Likewise, retracted news items may spread and persist, despite being publi...
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  • The Latent Structure of Dictionaries.Philippe Vincent-Lamarre, Alexandre Blondin Massé, Marcos Lopes, Mélanie Lord, Odile Marcotte & Stevan Harnad - 2016 - Topics in Cognitive Science 8 (3):625-659.
    How many words—and which ones—are sufficient to define all other words? When dictionaries are analyzed as directed graphs with links from defining words to defined words, they reveal a latent structure. Recursively removing all words that are reachable by definition but that do not define any further words reduces the dictionary to a Kernel of about 10% of its size. This is still not the smallest number of words that can define all the rest. About 75% of the Kernel turns (...)
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  • Semantic facilitation in bilingual first language acquisition.Samuel Bilson, Hanako Yoshida, Crystal D. Tran, Elizabeth A. Woods & Thomas T. Hills - 2015 - Cognition 140 (C):122-134.
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  • Formal Distinctiveness of High‐ and Low‐Imageability Nouns: Analyses and Theoretical Implications.Jamie Reilly & Jacob Kean - 2007 - Cognitive Science 31 (1):157-168.
    Words associated with perceptually salient, highly imageable concepts are learned earlier in life, more accurately recalled, and more rapidly named than abstract words (R. W. Brown, 1976; Walker & Hulme, 1999). Theories accounting for this concreteness effect have focused exclusively on semantic properties of word referents. A novel possibility is that word structure may also contribute to the effect. We report a corpus-based analysis of the phonological and morphological structures of a large set of nouns with imageability ratings (N = (...)
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  • Emotional Valence Precedes Semantic Maturation of Words: A Longitudinal Computational Study of Early Verbal Emotional Anchoring.José Á Martínez-Huertas, Guillermo Jorge-Botana & Ricardo Olmos - 2021 - Cognitive Science 45 (7):e13026.
    We present a longitudinal computational study on the connection between emotional and amodal word representations from a developmental perspective. In this study, children's and adult word representations were generated using the latent semantic analysis (LSA) vector space model and Word Maturity methodology. Some children's word representations were used to set a mapping function between amodal and emotional word representations with a neural network model using ratings from 9‐year‐old children. The neural network was trained and validated in the child semantic space. (...)
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  • What Can Network Science Tell Us About Phonology and Language Processing?Michael S. Vitevitch - 2022 - Topics in Cognitive Science 14 (1):127-142.
    Contemporary psycholinguistic models place significant emphasis on the cognitive processes involved in the acquisition, recognition, and production of language but neglect many issues related to the representation of language-related information in the mental lexicon. In contrast, a central tenet of network science is that the structure of a network influences the processes that operate in that system, making process and representation inextricably connected. Here, we consider how the structure found across phonological networks of several languages from different language families may (...)
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  • What Drives Task Performance During Animal Fluency in People With Alzheimer’s Disease?Adrià Rofes, Vânia de Aguiar, Roel Jonkers, Se Jin Oh, Gayle DeDe & Jee Eun Sung - 2020 - Frontiers in Psychology 11.
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  • Word Distance Affects Subjective Temporal Distance.Cheng Wang, Yu Liu & Jun Wang - 2021 - Frontiers in Psychology 12.
    The kappa effect is a well-reported phenomenon in which spatial distance between discrete stimuli affects the perception of temporal distance demarcated by the corresponding stimuli. Here, we report a new phenomenon that we propose to designate as the lexical kappa effect in which word distance, a non-magnitude relationship of discrete stimuli that exists in the lexical space of the mental lexicon, affects the perception of temporal distance. A temporal bisection task was used to assess the subjective perception of the time (...)
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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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  • Analyzing Knowledge Retrieval Impairments Associated with Alzheimer’s Disease Using Network Analyses.Jeffrey C. Zemla & Joseph L. Austerweil - 2019 - Complexity 2019:1-12.
    A defining characteristic of Alzheimer’s disease is difficulty in retrieving semantic memories, or memories encoding facts and knowledge. While it has been suggested that this impairment is caused by a degradation of the semantic store, the precise ways in which the semantic store is degraded are not well understood. Using a longitudinal corpus of semantic fluency data, we derive semantic network representations of patients with Alzheimer’s disease and of healthy controls. We contrast our network-based approach with analyzing fluency data with (...)
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  • Modeling Bilingual Lexical Processing Through Code-Switching Speech: A Network Science Approach.Qihui Xu, Magdalena Markowska, Martin Chodorow & Ping Li - 2021 - Frontiers in Psychology 12.
    The study of code-switching speech has produced a wealth of knowledge in the understanding of bilingual language processing and representation. Here, we approach this issue by using a novel network science approach to map bilingual spontaneous CS speech. In Study 1, we constructed semantic networks on CS speech corpora and conducted community detections to depict the semantic organizations of the bilingual lexicon. The results suggest that the semantic organizations of the two lexicons in CS speech are largely distinct, with a (...)
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  • Functions and Cognitive Bases for the Concept of Actual Causation.David Danks - 2013 - Erkenntnis 78 (1):111-128.
    Our concept of actual causation plays a deep, ever-present role in our experiences. I first argue that traditional philosophical methods for understanding this concept are unlikely to be successful. I contend that we should instead use functional analyses and an understanding of the cognitive bases of causal cognition to gain insight into the concept of actual causation. I additionally provide initial, programmatic steps towards carrying out such analyses. The characterization of the concept of actual causation that results is quite different (...)
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  • Formal Distinctiveness of High- and Low-Imageability Nouns: Analyses and Theoretical Implications.Jamie Reilly & Jacob Kean - 2007 - Cognitive Science 31 (1):157-168.
    Words associated with perceptually salient, highly imageable concepts are learned earlier in life, more accurately recalled, and more rapidly named than abstract words (R. W. Brown, 1976; Walker & Hulme, 1999). Theories accounting for this concreteness effect have focused exclusively on semantic properties of word referents. A novel possibility is that word structure may also contribute to the effect. We report a corpus-based analysis of the phonological and morphological structures of a large set of nouns with imageability ratings (N = (...)
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  • Word embeddings are biased. But whose bias are they reflecting?Davor Petreski & Ibrahim C. Hashim - 2023 - AI and Society 38 (2):975-982.
    From Curriculum Vitae parsing to web search and recommendation systems, Word2Vec and other word embedding techniques have an increasing presence in everyday interactions in human society. Biases, such as gender bias, have been thoroughly researched and evidenced to be present in word embeddings. Most of the research focuses on discovering and mitigating gender bias within the frames of the vector space itself. Nevertheless, whose bias is reflected in word embeddings has not yet been investigated. Besides discovering and mitigating gender bias, (...)
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  • The Role of Semantic Clustering in Optimal Memory Foraging.Priscilla Montez, Graham Thompson & Christopher T. Kello - 2015 - Cognitive Science 39 (8):1925-1939.
    Recent studies of semantic memory have investigated two theories of optimal search adopted from the animal foraging literature: Lévy flights and marginal value theorem. Each theory makes different simplifying assumptions and addresses different findings in search behaviors. In this study, an experiment is conducted to test whether clustering in semantic memory may play a role in evidence for both theories. Labeled magnets and a whiteboard were used to elicit spatial representations of semantic knowledge about animals. Category recall sequences from a (...)
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  • A Critical Review of Network‐Based and Distributional Approaches to Semantic Memory Structure and Processes.Abhilasha A. Kumar, Mark Steyvers & David A. Balota - 2022 - Topics in Cognitive Science 14 (1):54-77.
    Topics in Cognitive Science, Volume 14, Issue 1, Page 54-77, January 2022.
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  • Chaining and the growth of linguistic categories.Amir Ahmad Habibi, Charles Kemp & Yang Xu - 2020 - Cognition 202 (C):104323.
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  • Discovering Psychological Principles by Mining Naturally Occurring Data Sets.Robert L. Goldstone & Gary Lupyan - 2016 - Topics in Cognitive Science 8 (3):548-568.
    The very expertise with which psychologists wield their tools for achieving laboratory control may have had the unwelcome effect of blinding psychologists to the possibilities of discovering principles of behavior without conducting experiments. When creatively interrogated, a diverse range of large, real-world data sets provides powerful diagnostic tools for revealing principles of human judgment, perception, categorization, decision-making, language use, inference, problem solving, and representation. Examples of these data sets include patterns of website links, dictionaries, logs of group interactions, collections of (...)
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  • Scale in Language.N. J. Enfield - 2023 - Cognitive Science 47 (10):e13341.
    A central concern of the cognitive science of language since its origins has been the concept of the linguistic system. Recent approaches to the system concept in language point to the exceedingly complex relations that hold between many kinds of interdependent systems, but it can be difficult to know how to proceed when “everything is connected.” This paper offers a framework for tackling that challenge by identifying *scale* as a conceptual mooring for the interdisciplinary study of language systems. The paper (...)
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  • Emergence of Covid‐19 as a Novel Concept Shifts Existing Semantic Spaces.Charles P. Davis - 2023 - Cognitive Science 47 (1):e13237.
    Conceptual knowledge is dynamic, fluid, and flexible, changing as a function of contextual factors at multiple scales. The Covid-19 pandemic can be considered a large-scale, global context that has fundamentally altered most people's experiences with the world. It has also introduced a new concept, COVID (or COVID-19), into our collective knowledgebase. What are the implications of this introduction for how existing conceptual knowledge is structured? Our collective emotional and social experiences with the world have been profoundly impacted by the Covid-19 (...)
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  • Mental and perceptual feedback in the development of creative flow.Genevieve M. Cseh, Louise H. Phillips & David G. Pearson - 2016 - Consciousness and Cognition 42 (C):150-161.
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