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  • 1
    Online-Ressource
    Online-Ressource
    Cham :Springer Nature Switzerland :
    Dazugehörige Titel
    UID:
    almafu_9961535695002883
    Umfang: 1 online resource (138 pages)
    Ausgabe: 1st ed. 2024.
    ISBN: 9783031573125 , 3031573129
    Serie: Studies in Computational Intelligence, 1157
    Inhalt: This book proposes a novel connectionist approach to a challenging topic of language modeling within the context of kernel memory and artificial mind system, both proposed previously by the author in the very first volume of the series, Artificial Mind System—Kernel Memory Approach: Studies in Computational Intelligence, Vol. 1. The present volume focuses on how syntactic structures of language are modeled in terms of the respective composite connectionist architectures, each embracing both the nonsymbolic and symbolic parts. These two parts are developed via inter-module processes within the artificial mind system and eventually integrated under a unified framework of kernel memory. The data representation by the networks embodied within the kernel memory principle is essentially local, unlike conventional artificial neural network models such as the pervasive multilayer perceptron-based neural networks. With this locality principle, kernel memory inherently bears many attractive features, such as topologically unconstrained network formation, straightforward network growing, shrinking, and reconfiguration, no requirement of arduous iterative parameter tuning, construction of transparent and hierarchical data structures, and multimodal and temporal data processing via the network representation. Exploiting these multifacet properties of kernel memory with interweaving the notion of inter-module processing within the artificial mind system provides coherent accounts for concept formation and how various linguistic phenomena, viz. word compoundings, morphologies, and multiword constructions, are modeled. The description is then extended to more intricate network models of context-dependent lexical network and syntactic-oriented processing, the latter being the central theme of the present study, and further to those representing a hybrid of nonverbal and verbal thinking, and semantic and pragmatic aspects of sentential meaning. The book is intended for general readers engaging in various areas of study in cognitive science, computer science, engineering, linguistics, philosophy, psycholinguistics, and psychology.
    Anmerkung: Review of the Two Existing Artificial Neural Network Models – Multilayer Perceptron and Probabilistic Neural Networks -- Beyond the Original PNN Model – Kernel Memory for Modeling Various Neural Pattern Processing Mechanism -- Modules within the Artificial Mind System and Their Interactions Relevant to Language Pattern Processing -- Concept Formation.
    Weitere Ausg.: ISBN 9783031573118
    Weitere Ausg.: ISBN 3031573110
    Sprache: Englisch
    Fachgebiete: Informatik
    RVK:
    URL: Volltext  (URL des Erstveröffentlichers)
    Bibliothek Standort Signatur Band/Heft/Jahr Verfügbarkeit
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  • 2
    Online-Ressource
    Online-Ressource
    Cham :Springer International Publishing AG,
    UID:
    edoccha_9961535695002883
    Umfang: 1 online resource (138 pages)
    Ausgabe: 1st ed.
    ISBN: 3-031-57312-9
    Serie: Studies in Computational Intelligence Series ; v.1157
    Anmerkung: Intro -- Preface -- Acknowledgements -- Contents -- Acronyms -- 1 Introduction -- 2 Review of the Two Existing Artificial Neural Network Models-Multilayer Perceptron and Probabilistic Neural Networks -- 2.1 Nodes and Connections in the ANN Models -- 2.2 Multilayer Perceptron Neural Networks -- 2.3 Interpretation of Weighted Connections Between the Nodes -- 2.4 Radial Basis Function Neural Network -- 2.5 Image Classification Task Performed via Applying an MLP-NN/RBF-NN -- 2.6 Training an MLP-NN -- 2.7 Training a Variant of the RBF-NN Models-Probabilistic Neural Network -- 2.8 Data Reduction to Mitigate the Curse of Dimensionality for PNN -- 2.9 Summary of Reviewing the Two Layered-Type Artificial … -- 3 Beyond the Original PNN Model-Kernel Memory for Modeling Various Neural Pattern Processing Mechanisms -- 3.1 Dealing with Multiple Different Data Domain Inputs -- 3.2 Lateral Connections Represented by Link-Weights -- 3.3 Redefining the Notion of Node's Input/Output as Kernel Unit -- 3.4 Extended PNN Model Capable of Simultaneous Pattern Classification … -- 3.5 Introducing Multiple Output Node Collections for Simultaneous … -- 3.6 Temporal Processing-Serial-Order Detection in the Activation Patterns of Nodes -- 3.7 A Practical Example of Implementing the Serial-Order … -- 3.8 Data Representation by Way of Kernel Memory -- 3.9 Redefining the Notion of Learning within the Kernel Memory Context -- 3.10 Summary of the Models Extended from the Original PNN … -- 4 Modules Within the Artificial Mind System and Their Interactions Relevant to Language Pattern Processing -- 4.1 Modules Responsible for the Input and Outputs of AMS -- 4.2 Short-/Long-Term Memory Modules -- 4.3 Memory Modules Represented by Kernel Memory -- 4.4 The STM/Working Memory Module and Its Kernel Memory Representation -- 4.5 Four Modules Associated with the STM/Working …. , 4.6 Data Arriving at the STM/Working Memory Module from Other Associated Modules -- 5 Concept Formation -- 5.1 Concept Formation as Multimodal Data Fusion Process -- 5.2 An Example of Concept Formation-The Concept of Digits -- 5.3 Revisiting the Notion of Performing Pattern Recognition Tasks Within the AMS Context -- 5.4 Construction of a Network Representing Concepts -- 5.5 Justification of Generating the Type (ii) Units in Scenario (2) -- 6 Representation of Lexical Networks and Word-Level Data Processing -- 6.1 Kernel Memory Representation of a Lexical Network -- 6.2 Activation Transfer Between the Units for Serial-Order Activation Detection and Their Subordinate Units -- 6.3 Construction of the Lexical Network -- 6.4 Representation of the Activation Traces Among the Units … -- 6.5 Context-Dependent Representation of a Lexical Network -- 6.6 Association Between Concepts -- 6.7 Facilitation of the Association Between Symbolic Units for Compounding Words -- 6.8 Single-Word Compoundings and Multiple-Word Combinations … -- 6.9 The Units Representing Abstract Concepts -- 6.10 Word Inflection and Derivation -- 6.11 Acquisition of Word Morphologies and Multi-Word Constructions -- 6.12 Compositionality in Concepts -- 6.13 Irregular Inflections -- 6.14 Parsimonious Representation via Morpheme Stripping -- 7 Syntactic Processing -- 7.1 Syntactic Networks Comprised of the Combination of Symbolic Units for Serial Order Detection and Gating Units -- 7.2 An Example of Processing Word Sequences Through a Syntactic Network Structure -- 7.3 Necessity Beyond Genuine Syntactic Processing -- 7.4 Syntactic Processing of the Sentences with an Intricate Structure (cf. Hoyasps2018) -- 7.5 Syntactic Processing of Embedded Sentences (cf. Hoyasps2018) -- 7.6 Some Considerations of Minimal Effort Principle -- 7.7 Performing the Semantic Analysis of Sentences. , 7.8 Generalizing Propositional Network Structures to Multilingual System -- 7.9 Analysis of Sentences in the Pragmatic Sense via the Thinking Module -- 7.10 Hybrid of Verbal and Nonverbal Thinking -- 8 Epilogue -- Appendix References -- -- Index.
    Weitere Ausg.: ISBN 3-031-57311-0
    Sprache: Englisch
    Bibliothek Standort Signatur Band/Heft/Jahr Verfügbarkeit
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  • 3
    Buch
    Buch
    Cham :Springer,
    Dazugehörige Titel
    UID:
    almahu_BV049754221
    Umfang: xv, 129 Seiten : , Illustrationen, Diagramme.
    ISBN: 978-3-031-57311-8
    Serie: Studies in computational intelligence volume 1157
    Weitere Ausg.: Erscheint auch als Online-Ausgabe ISBN 978-3-031-57312-5
    Sprache: Englisch
    Fachgebiete: Informatik
    RVK:
    Bibliothek Standort Signatur Band/Heft/Jahr Verfügbarkeit
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  • 4
    Online-Ressource
    Online-Ressource
    Cham :Springer Nature Switzerland :
    Dazugehörige Titel
    UID:
    almahu_9949744370202882
    Umfang: XV, 129 p. 31 illus. , online resource.
    Ausgabe: 1st ed. 2024.
    ISBN: 9783031573125
    Serie: Studies in Computational Intelligence, 1157
    Inhalt: This book proposes a novel connectionist approach to a challenging topic of language modeling within the context of kernel memory and artificial mind system, both proposed previously by the author in the very first volume of the series, Artificial Mind System-Kernel Memory Approach: Studies in Computational Intelligence, Vol. 1. The present volume focuses on how syntactic structures of language are modeled in terms of the respective composite connectionist architectures, each embracing both the nonsymbolic and symbolic parts. These two parts are developed via inter-module processes within the artificial mind system and eventually integrated under a unified framework of kernel memory. The data representation by the networks embodied within the kernel memory principle is essentially local, unlike conventional artificial neural network models such as the pervasive multilayer perceptron-based neural networks. With this locality principle, kernel memory inherently bears many attractive features, such as topologically unconstrained network formation, straightforward network growing, shrinking, and reconfiguration, no requirement of arduous iterative parameter tuning, construction of transparent and hierarchical data structures, and multimodal and temporal data processing via the network representation. Exploiting these multifacet properties of kernel memory with interweaving the notion of inter-module processing within the artificial mind system provides coherent accounts for concept formation and how various linguistic phenomena, viz. word compoundings, morphologies, and multiword constructions, are modeled. The description is then extended to more intricate network models of context-dependent lexical network and syntactic-oriented processing, the latter being the central theme of the present study, and further to those representing a hybrid of nonverbal and verbal thinking, and semantic and pragmatic aspects of sentential meaning. The book is intended for general readers engaging in various areas of study in cognitive science, computer science, engineering, linguistics, philosophy, psycholinguistics, and psychology.
    Anmerkung: Review of the Two Existing Artificial Neural Network Models - Multilayer Perceptron and Probabilistic Neural Networks -- Beyond the Original PNN Model - Kernel Memory for Modeling Various Neural Pattern Processing Mechanism -- Modules within the Artificial Mind System and Their Interactions Relevant to Language Pattern Processing -- Concept Formation.
    In: Springer Nature eBook
    Weitere Ausg.: Printed edition: ISBN 9783031573118
    Weitere Ausg.: Printed edition: ISBN 9783031573132
    Weitere Ausg.: Printed edition: ISBN 9783031573149
    Sprache: Englisch
    Bibliothek Standort Signatur Band/Heft/Jahr Verfügbarkeit
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