Machine Learning Methods in Systems [electronic resource] : Proceedings of 13th Computer Science On-line Conference 2024, Vol. 4 / edited by Radek Silhavy, Petr Silhavy.

Colaborador(es): Silhavy, Radek [editor.] | Silhavy, Petr [editor.] | SpringerLink (Online service)Tipo de material: TextoTextoSeries Lecture Notes in Networks and Systems ; 1126Editor: Cham : Springer Nature Switzerland : Imprint: Springer, 2024Edición: 1st ed. 2024Descripción: XV, 520 p. 193 illus., 139 illus. in color. online resourceTipo de contenido: text Tipo de medio: computer Tipo de portador: online resourceISBN: 9783031705953Tema(s): Computational intelligence | Software engineering | Computational Intelligence | Software EngineeringFormatos físicos adicionales: Printed edition:: Sin título; Printed edition:: Sin títuloClasificación CDD: 006.3 Clasificación LoC:Q342Recursos en línea: Libro electrónicoTexto
Contenidos:
-- 1: Extrapolation of periodic signal with Poisson noise using neural networks. -- 2: Method for Complexing Information From Intelligent Sensors of Mobile Components of Monitoring Systems. -- 3: Using regression models to analyze data. -- 4: Improving Password Generation Algorithm with Parallellism: comparative performance study. -- 5: Assessing the Feasibility of Implementing Information Systems and Management Systems Projects Using Fuzzy Modeling Tools. -- 6: Semi-phenomenological approach to the description of gold nanoclusters. -- 7: "Imaginary boundary" method in studying the optical properties of ordered nanostructures. -- 8: A method for controlling the efficiency of second harmonic generation by controlled change in the refractive index of an external dielectric medium. -- 9: Study of the properties of selectively transparent metasurfaces tunable through external control of the properties of 2D materials, etc.
En: Springer Nature eBookResumen: This book requires an in-depth exploration of machine learning and its integration into system engineering. This book presents contemporary research methodologies, with a strong focus on the innovative application of machine learning techniques in developing and optimizing systems. It includes the meticulously reviewed proceedings from the Machine Learning Methods in Systems session of the 13th Computer Science Online Conference 2024 (CSOC 2024), held virtually in April 2024.
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-- 1: Extrapolation of periodic signal with Poisson noise using neural networks. -- 2: Method for Complexing Information From Intelligent Sensors of Mobile Components of Monitoring Systems. -- 3: Using regression models to analyze data. -- 4: Improving Password Generation Algorithm with Parallellism: comparative performance study. -- 5: Assessing the Feasibility of Implementing Information Systems and Management Systems Projects Using Fuzzy Modeling Tools. -- 6: Semi-phenomenological approach to the description of gold nanoclusters. -- 7: "Imaginary boundary" method in studying the optical properties of ordered nanostructures. -- 8: A method for controlling the efficiency of second harmonic generation by controlled change in the refractive index of an external dielectric medium. -- 9: Study of the properties of selectively transparent metasurfaces tunable through external control of the properties of 2D materials, etc.

This book requires an in-depth exploration of machine learning and its integration into system engineering. This book presents contemporary research methodologies, with a strong focus on the innovative application of machine learning techniques in developing and optimizing systems. It includes the meticulously reviewed proceedings from the Machine Learning Methods in Systems session of the 13th Computer Science Online Conference 2024 (CSOC 2024), held virtually in April 2024.

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