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dc.contributor.author Tozzi, Arturo
dc.contributor.author Peters, James Francis
dc.date.accessioned 2025-09-29T10:55:49Z
dc.date.available 2025-09-29T10:55:49Z
dc.date.issued 2020
dc.identifier.issn 1871-4080
dc.identifier.uri http://dspace.adiyaman.edu.tr:8080/xmlui/handle/20.500.12414/6733
dc.description.abstract Neuroscientists draw lines of separation among structures and functions that they judge different, arbitrarily excluding or including issues in our description, to achieve positive demarcations that permits a pragmatic treatment of the nervous activity based on regularity and uniformity. However, uncertainty due to disconnectedness, lack of information and absence of objects' sharp boundaries is a troubling issue that prevents these scientists to select the required proper sets/subsets during their experimental assessment of natural and artificial neural networks. Starting from the detection of metamorphoses of shapes inside a Euclidean manifold, we propose a technique to detect the topological changes that occur during their reciprocal interactions and shape morphing. This method, that allows the detection of topological holes development and disappearance, makes it possible to solve the problem of uncertainty in the assessment of countless dynamical phenomena, such as cognitive processes, protein homeostasis deterioration, fire propagation, wireless sensor networks, migration flows, and cosmic bodies analysis. tr
dc.language.iso en tr
dc.publisher SPRINGER tr
dc.subject Holes tr
dc.subject Grid tr
dc.subject Homology tr
dc.subject Shapes tr
dc.subject Uncertainty tr
dc.title Removing uncertainty in neural networks tr
dc.type Article tr
dc.contributor.authorID 0000-0001-8426-4860 tr
dc.contributor.department Univ North Texas, Ctr Nonlinear Sci, Dept Phys tr
dc.contributor.department Univ Manitoba, Dept Elect & Comp Engn tr
dc.contributor.department Adiyaman Univ, Dept Math, tr
dc.identifier.endpage 345 tr
dc.identifier.issue 3 tr
dc.identifier.startpage 339 tr
dc.identifier.volume 14 tr
dc.source.title COGNITIVE NEURODYNAMICS tr


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