Results for ' semantic networks'

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  1.  20
    Investigating the structure of semantic networks in low and high creative persons.Yoed N. Kenett, David Anaki & Miriam Faust - 2014 - Frontiers in Human Neuroscience 8:89404.
    According to Mednick’s (1962) theory of individual differences in creativity, creative individuals appear to have a richer and more flexible associative network than less creative individuals. Thus, creative individuals are characterized by “flat” (broader associations) instead of “steep” (few, common associations) associational hierarchies. To study these differences, we implement a novel computational approach to the study of semantic networks, through the analysis of free associations. The core notion of our method is that concepts in the network are related (...)
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  2.  14
    Semantic network analysis in social sciences.Elad Segev (ed.) - 2021 - London: Routledge.
    Semantic Network Analysis in Social Sciences introduces the fundamentals of semantic network analysis and its applications in the social sciences. Readers learn how to easily transform any given text into a visual network of words co-occurring together, a process that allows mapping the main themes appearing in the text and revealing its main narratives and biases. Semantic network analysis is particularly useful today with the increasing volumes of text-based information available. It is one of the developing, cutting-edge (...)
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  3. Semantic networks.M. Ross Quillian - 1968 - In Marvin Lee Minsky (ed.), Semantic Information Processing. MIT Press.
  4. Revising the UMLS Semantic Network.Steffen Schulze-Kremer, Barry Smith & Anand Kumar - 2004 - In Schulze-Kremer Steffen, Smith Barry & Kumar Anand (eds.), MedInfo.
    The integration of standardized biomedical terminologies into a single, unified knowledge representation system has formed a key area of applied informatics research in recent years. The Unified Medical Language System (UMLS) is the most advanced and most prominent effort in this direction, bringing together within its Metathesaurus a large number of distinct source-terminologies. The UMLS Semantic Network, which is designed to support the integration of these source-terminologies, has proved to be a highly successful combination of formal coherence and broad (...)
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  5.  26
    Intensional Concepts in Propositional Semantic Networks.Anthony S. Maida & Stuart C. Shapiro - 1982 - Cognitive Science 6 (4):291-330.
    An integrated statement is made concerning the semantic status of nodes in a propositional semantic network, claiming that such nodes represent only intensions. Within the network, the only reference to extensionality is via a mechanism to assert that two intensions have the same extension in same world. This framework is employed in three application problems to illustrate the nature of its solutions.The formalism used here utilizes only assertional information and no structural, or definitional, information. This restriction corresponds to (...)
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  6.  34
    Random walks on semantic networks can resemble optimal foraging.Joshua T. Abbott, Joseph L. Austerweil & Thomas L. Griffiths - 2015 - Psychological Review 122 (3):558-569.
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  7. Semantic networks.Michael A. Arbib - 2002 - In The Handbook of Brain Theory and Neural Networks, Second Edition. MIT Press.
  8.  31
    Principles of Semantic Networks.Steven Schwartz - 1984 - Behavioral and Brain Sciences 7 (4).
    A semantic network or net is a graphic notation for representing knowledge in patterns of interconnected nodes and arcs. Computer implementations of semantic networks were first developed for artificial intelligence and machine translation, but earlier versions have long been used in philosophy, psychology, and linguistics. What is common to all semantic networks is a declarative graphic representation that can be used either to represent knowledge or to support automated systems for reasoning about knowledge. Some versions (...)
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  9.  17
    The Large‐Scale Structure of Semantic Networks: Statistical Analyses and a Model of Semantic Growth.Mark Steyvers & Joshua B. Tenenbaum - 2005 - Cognitive Science 29 (1):41-78.
    We present statistical analyses of the large‐scale structure of 3 types of semantic networks: word associations, WordNet, and Roget's Thesaurus. We show that they have a small‐world structure, characterized by sparse connectivity, short average path lengths between words, and strong local clustering. In addition, the distributions of the number of connections follow power laws that indicate a scale‐free pattern of connectivity, with most nodes having relatively few connections joined together through a small number of hubs with many connections. (...)
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  10. Natural Language Processing and Semantic Network Visualization for Philosophers.Mark Alfano & Andrew Higgins - 2019 - In Eugen Fischer & Mark Curtis (eds.), Methodological Advances in Experimental Philosophy. London: Bloomsbury Press.
    Progress in philosophy is difficult to achieve because our methods are evidentially and rhetorically weak. In the last two decades, experimental philosophers have begun to employ the methods of the social sciences to address philosophical questions. However, the adequacy of these methods has been called into question by repeated failures of replication. Experimental philosophers need to incorporate more robust methods to achieve a multi-modal perspective. In this chapter, we describe and showcase cutting-edge methods for data-mining and visualization. Big data is (...)
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  11.  27
    Semantic networks of english.George A. Miller & Christiane Fellbaum - 1991 - Cognition 41 (1-3):197-229.
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  12.  44
    The Large‐Scale Structure of Semantic Networks: Statistical Analyses and a Model of Semantic Growth.Mark Steyvers & Joshua B. Tenenbaum - 2005 - Cognitive Science 29 (1):41-78.
    We present statistical analyses of the large‐scale structure of 3 types of semantic networks: word associations, WordNet, and Roget's Thesaurus. We show that they have a small‐world structure, characterized by sparse connectivity, short average path lengths between words, and strong local clustering. In addition, the distributions of the number of connections follow power laws that indicate a scale‐free pattern of connectivity, with most nodes having relatively few connections joined together through a small number of hubs with many connections. (...)
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  13.  51
    Are semantic networks of schizophrenic samples intact?Richard W. J. Neufeld - 1984 - Behavioral and Brain Sciences 7 (4):749.
  14.  16
    Using Network Science to Understand the Aging Lexicon: Linking Individuals' Experience, Semantic Networks, and Cognitive Performance.Dirk U. Wulff, Simon De Deyne, Samuel Aeschbach & Rui Mata - 2022 - Topics in Cognitive Science 14 (1):93-110.
    People undergo many idiosyncratic experiences throughout their lives that may contribute to individual differences in the size and structure of their knowledge representations. Ultimately, these can have important implications for individuals' cognitive performance. We review evidence that suggests a relationship between individual experiences, the size and structure of semantic representations, as well as individual and age differences in cognitive performance. We conclude that the extent to which experience-dependent changes in semantic representations contribute to individual differences in cognitive aging (...)
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  15.  7
    Semantic networks of English.George A. Miller & Christiane Fellbaum - 1992 - In Beth Levin & Steven Pinker (eds.), Lexical & conceptual semantics. Cambridge, Ma.: Blackwell. pp. 197-229.
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  16.  12
    The Large-Scale Structure of Semantic Networks: Statistical Analyses and a Model of Semantic Growth.Mark Steyvers & Joshua B. Tenenbaum - 2005 - Cognitive Science 29 (1):41-78.
    We present statistical analyses of the large‐scale structure of 3 types of semantic networks: word associations, WordNet, and Roget's Thesaurus. We show that they have a small‐world structure, characterized by sparse connectivity, short average path lengths between words, and strong local clustering. In addition, the distributions of the number of connections follow power laws that indicate a scale‐free pattern of connectivity, with most nodes having relatively few connections joined together through a small number of hubs with many connections. (...)
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  17. The Form in Formal Thought Disorder: A Model of Dyssyntax in Semantic Networking.Farshad Badie & Luis M. Augusto - 2022 - MDPI AI 3:353–370.
    Formal thought disorder (FTD) is a clinical mental condition that is typically diagnosable by the speech productions of patients. However, this has been a vexing condition for the clinical community, as it is not at all easy to determine what “formal” means in the plethora of symptoms exhibited. We present a logic-based model for the syntax–semantics interface in semantic networking that can not only explain, but also diagnose, FTD. Our model is based on description logic (DL), which is well (...)
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  18.  21
    Semantic networks, schizophrenia, and language.Steven Schwartz - 1984 - Behavioral and Brain Sciences 7 (4):750.
  19.  9
    Examining Crisis Communication Using Semantic Network and Sentiment Analysis: A Case Study on NetEase Games.ShaoPeng Che, Dongyan Nan, Pim Kamphuis, Shunan Zhang & Jang Hyun Kim - 2022 - Frontiers in Psychology 13.
    The mobile game “Immortal Conquest,” created by NetEase Games, caused a dramatic user dissatisfaction event after an introduction of a sudden and uninvited “pay-to-win” update. As a result, many players filed grievances against NetEase in a court. The official game website issued three apologies, with mix results, to mitigate the crisis. The goal of the present study is to understand user feedback content from the perspective of Situational Crisis Communication Theory through semantic network analysis and sentiment analysis to explore (...)
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  20.  14
    A sceptical theory of inheritance in nonmonotonic semantic networks.John F. Horty, Richmond H. Thomason & David S. Touretzky - 1990 - Artificial Intelligence 42 (2-3):311-348.
    inheritance reasoning in semantic networks allowing for multiple inheritance with exceptions. The approach leads to a definition of iaheritance that is..
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  21.  21
    Age‐Specific Effects of Lexical–Semantic Networks on Word Production.Giulia Krethlow, Raphaël Fargier & Marina Laganaro - 2020 - Cognitive Science 44 (11):e12915.
    The lexical–semantic organization of the mental lexicon is bound to change across the lifespan. Nevertheless, the effects of lexical–semantic factors on word processing are usually based on studies enrolling young adult cohorts. The current study aims to investigate to what extent age‐specific semantic organization predicts performance in referential word production over the lifespan, from school‐age children to older adults. In Study 1, we conducted a free semantic association task with participants from six age‐groups (ranging from 10 (...)
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  22.  11
    Semantic micro-dynamics as a reflex of occurrence frequency: a semantic networks approach.Andreas Baumann, Klaus Hofmann, Anna Marakasova, Julia Neidhardt & Tanja Wissik - 2023 - Cognitive Linguistics 34 (3-4):533-568.
    This article correlates fine-grained semantic variability and change with measures of occurrence frequency to investigate whether a word’s degree of semantic change is sensitive to how often it is used. We show that this sensitivity can be detected within a short time span (i.e., 20 years), basing our analysis on a large corpus of German allowing for a high temporal resolution (i.e., per month). We measure semantic variability and change with the help of local semantic (...), combining elements of deep learning methodology and graph theory. Our micro-scale analysis complements previous macro-scale studies from the field of natural language processing, corroborating the finding that high token frequency has a negative effect on the degree of semantic change in a lexical item. We relate this relationship to the role of exemplars for establishing form–function pairings between words and their habitual usage contexts. (shrink)
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  23.  9
    Default reasoning in semantic networks: A formalization of recognition and inheritance.Lokendra Shastri - 1989 - Artificial Intelligence 39 (3):283-355.
  24.  13
    Meaning-text semantic networks as a formal language.Alain Polguere - 1997 - In Leo Wanner (ed.), Recent trends in meaning-text theory. Philadelphia.: John Benjamins. pp. 39--1.
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  25.  59
    Categorical structure in early semantic networks of nouns.Thomas 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.
  26.  11
    Natural language processing using a propositional semantic network with structured variables.Syed S. Ali & Stuart C. Shapiro - 1993 - Minds and Machines 3 (4):421-451.
    We describe a knowledge representation and inference formalism, based on an intensional propositional semantic network, in which variables are structures terms consisting of quantifier, type, and other information. This has three important consequences for natural language processing. First, this leads to an extended, more natural formalism whose use and representations are consistent with the use of variables in natural language in two ways: the structure of representations mirrors the structure of the language and allows re-use phenomena such as pronouns (...)
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  27.  30
    In Adam Smith’s Own Words: The Role of Virtues in the Relationship Between Free Market Economies and Societal Flourishing, A Semantic Network Data-Mining Approach.Johan Graafland & Thomas R. Wells - 2020 - Journal of Business Ethics 2020 (1):31-42.
    Among business ethicists, Adam Smith is widely viewed as the defender of an amoral if not anti-moral economics in which individuals’ pursuit of their private self-interest is converted by an ‘invisible hand’ into shared economic prosperity. This is often justified by reference to a select few quotations from The Wealth of Nations. We use new empirical methods to investigate what Smith actually had to say, firstly about the relationship between free market institutions and individuals’ moral virtues, and secondly about the (...)
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  28. Inheritance in semantic networks and default logic.C. Froidevaux & D. Kayser - 1988 - In Philippe Smets (ed.), Non-standard logics for automated reasoning. San Diego: Academic Press. pp. 179--212.
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  29. Fuzzy Networks for Modeling Shared Semantic Knowledge.Farshad Badie & Luis M. Augusto - 2023 - Journal of Artificial General Intelligence 14 (1):1-14.
    Shared conceptualization, in the sense we take it here, is as recent a notion as the Semantic Web, but its relevance for a large variety of fields requires efficient methods of extraction and representation for both quantitative and qualitative data. This notion is particularly relevant for the investigation into, and construction of, semantic structures such as knowledge bases and taxonomies, but given the required large, often inaccurate, corpora available for search we can get only approximations. We see fuzzy (...)
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  30.  85
    Culture as Mediator for what is Ready-to-hand: A Phenomenological Exploration of Semantic Networks.D. J. Saab - manuscript
    Upon what philosophical foundation are semantic network graphs based? Does this foundation allow for the legitimization of other semantic networks and ontological diversity? How can we design our computational and informational systems to accommodate this ontological diversity and the variety of semantic networks? Are semantic networks segmentations of larger semantic landscapes? This paper explores semantic networks from a Heideggerian existentialist and phenomenological perspective. The analysis presented uses cultural schema theory to (...)
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  31.  46
    WATER Metaphors and Metonymies in Chinese: A Semantic Network.Yaning Nie & Rong Chen - 2008 - Pragmatics and Cognition 16 (3):492-516.
    This paper studies how the concept WATER is metonymically and metaphorically extended to six super-domains: NATURE, LIFE SUSTAINER, MOVEMENT, POWER, PURITY, and WOMAN. We demonstrate that these six target domains are related to each other in intricate ways and within each are a number of sub-domains. This complicated semantic network of WATER is formed via speakers’ embodied experience with their physical as well as cultural environment. We believe that our detailed discussion of the WATER network will contribute to the (...)
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  32.  24
    Chunking and consolidation: A theoretical synthesis of semantic networks, configuring in conditioning, S-R versus cognitive learning, normal forgetting, the amnesic syndrome, and the hippocampal arousal system.Wayne A. Wickelgren - 1979 - Psychological Review 86 (1):44-60.
  33.  33
    Psychological Meaning of “Coauthorship” Among Scientists Using the Natural Semantic Networks Technique.Sofia Liberman & Roberto López Olmedo - 2017 - Social Epistemology 31 (2):152-164.
    The purpose of this study is to determine the psychological meaning of coauthorship for a group of scientists, based on the assumption that the meaning of a concept is related to experience on “how a person behaves in a situation, depending on what the situation signifies to him”. The semantic meaning provides for an interpretation of action in beliefs, goals and intentions, following the idea that semantic meaning is a basis for inferring intentions to perform action. We used (...)
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  34.  28
    Capturing Online Presence: Hyperlinks and Semantic Networks in Activist Group Websites on Corporate Social Responsibility.Frank G. A. de Bakker & Iina Hellsten - 2013 - Journal of Business Ethics 118 (4):807-823.
    The rise of Internet-mediated communication poses possibilities and challenges for organisation studies, also in the area of corporate social responsibility and business and society interactions. Although social media are attracting more and more attention in this domain, websites also remain an important channel for CSR debate. In this paper, we present an explorative study of activist groups’ online presence via their websites and propose a combination of methods to study both the structural positioning of websites and the meanings in these (...)
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  35. Semantic information and the network theory of account.Luciano Floridi - 2012 - Synthese 184 (3):431-454.
    The article addresses the problem of how semantic information can be upgraded to knowledge. The introductory section explains the technical terminology and the relevant background. Section 2 argues that, for semantic information to be upgraded to knowledge, it is necessary and sufficient to be embedded in a network of questions and answers that correctly accounts for it. Section 3 shows that an information flow network of type A fulfils such a requirement, by warranting that the erotetic deficit, characterising (...)
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  36.  22
    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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  37. How semantic memory structure and intelligence contribute to creative thought: a network science approach.Mathias Benedek, Yoed N. Kenett, Konstantin Umdasch, David Anaki, Miriam Faust & Aljoscha C. Neubauer - 2017 - Thinking and Reasoning 23 (2):158-183.
    The associative theory of creativity states that creativity is associated with differences in the structure of semantic memory, whereas the executive theory of creativity emphasises the role of top-down control for creative thought. For a powerful test of these accounts, individual semantic memory structure was modelled with a novel method based on semantic relatedness judgements and different criteria for network filtering were compared. The executive account was supported by a correlation between creative ability and broad retrieval ability. (...)
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  38.  7
    BabelNet: The automatic construction, evaluation and application of a wide-coverage multilingual semantic network.Roberto Navigli & Simone Paolo Ponzetto - 2012 - Artificial Intelligence 193 (C):217-250.
  39.  9
    Non-monotonic reasoning in a semantic network.Marcel Cori - 1991 - In Bernadette Bouchon-Meunier, Ronald R. Yager & Lotfi A. Zadeh (eds.), Uncertainty in Knowledge Bases: 3rd International Conference on Information Processing and Management of Uncertainty in Knowledge-Based Systems, IPMU'90, Paris, France, July 2 - 6, 1990. Proceedings. Springer. pp. 239--248.
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  40.  43
    Simulating the N400 ERP component as semantic network error: Insights from a feature-based connectionist attractor model of word meaning.Milena Rabovsky & Ken McRae - 2014 - Cognition 132 (1):68-89.
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  41.  24
    Combining Temporal and Spectral Information with Spatial Mapping to Identify Differences between Phonological and Semantic Networks: A Magnetoencephalographic Approach.Fiona McNab, Arjan Hillebrand, Stephen J. Swithenby & Gina Rippon - 2012 - Frontiers in Psychology 3.
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  42.  16
    Extending the expressive power of semantic networks.L. K. Schubert - 1976 - Artificial Intelligence 7 (2):163-198.
  43.  48
    The Influence of Concreteness of Concepts on the Integration of Novel Words into the Semantic Network.Jinfeng Ding, Wenjuan Liu & Yufang Yang - 2017 - Frontiers in Psychology 8.
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  44.  27
    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 (...)
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  45. Meinongian Semantics and Artificial Intelligence.William J. Rapaport - 2013 - Humana Mente 6 (25):25-52.
    This essay describes computational semantic networks for a philosophical audience and surveys several approaches to semantic-network semantics. In particular, propositional semantic networks are discussed; it is argued that only a fully intensional, Meinongian semantics is appropriate for them; and several Meinongian systems are presented.
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  46.  22
    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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  47.  17
    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 (...)
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  48.  21
    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 (...)
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  49. A cortical network for semantics: (de)constructing the N400.E. Lau, C. Phillips & D. Poeppel - 2008 - Nature Reviews Neuroscience 9:920-933.
    Measuring event-related potentials (ERPs) has been fundamental to our understanding of how language is encoded in the brain. One particular ERP response, the N400 response, has been especially influential as an index of lexical and semantic processing. However, there remains a lack of consensus on the interpretation of this component. Resolving this issue has important consequences for neural models of language comprehension. Here we show that evidence bearing on where the N400 response is generated provides key insights into what (...)
     
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  50.  38
    Neural networks underlying contributions from semantics in reading aloud.Olga Boukrina & William W. Graves - 2013 - Frontiers in Human Neuroscience 7.
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