Multilayer networks as embodied consciousness interactions. A formal model approach.

An algebraic interpretation of multigraph networks is introduced in relation to conscious experience, brain and body. These multigraphs have the ability to merge by an associative binary operator ⊙ , accounting for biological composition. We also study a mathematical formulation of splitting layers,...

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Publicado en:Phenomenology & the Cognitive Sciences Vol. 23; no. 5; pp. 1119 - 1151
Autores principales: Signorelli, Camilo Miguel, Boils, Joaquin Diaz
Formato: Artículo
Publicado: Springer Nature Dec2024
Materias:
Acceso en línea:Ver este registro en EBSCOhost
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          Signorelli, Camilo Miguel
          Boils, Joaquin Diaz
        affil:
          https://ror.org/052gg0110 Department of Computer Science, University of Oxford, 15 Parks Rd, OX1 3QD, Oxford, United Kingdom
          https://ror.org/035b05819 Center for Philosophy of Artificial Intelligence, University of Copenhagen, Karen Blixens Plads 8, 2300, Copenhagen, Denmark
          https://ror.org/01r9htc13 Laboratory of Neurophysiology and Movement Biomechanics (LNMB), Université Libre de Bruxelles (ULB), Route de Lennik 808, CP 640. Building N, campus Erasme, 1070, Brussels, Belgium
          https://ror.org/043nxc105 Departament d'Economia Aplicada, Universitat de València, Avinguda dels Tarongers, Valencia, Spain
      su:
        Conscious automata
        Mathematical category theory
        Artificial intelligence
        Phenomenology
        Multigraph
      sug:
        subj:
          Conscious automata
          Mathematical category theory
          Artificial intelligence
          Phenomenology
          Multigraph
      keyword:
        Category theory
        Conscious experience
        Multilayer network
        Radical embodiment
      ab: An algebraic interpretation of multigraph networks is introduced in relation to conscious experience, brain and body. These multigraphs have the ability to merge by an associative binary operator ⊙ , accounting for biological composition. We also study a mathematical formulation of splitting layers, resulting in a formal analysis of the transition from conscious to non-conscious activity. From this construction, we recover core structures for conscious experience, dynamical content and causal constraints that conscious interactions may impose. An important result is the prediction of structural topological changes after conscious interactions. These results may inspire further use of formal mathematics to describe and predict new features of conscious experience while aligning well with formal tries to mathematize phenomenology, phenomenological tradition and applications to artificial consciousness.
      pubtype: Academic Journal
      doctype: Article
      src: R
    language: English
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          year: 2024
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