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    Por favor, use este identificador para citar o enlazar este ítem: https://hdl.handle.net/10259/11485

    Título
    A Soft Computing System to Perform Face Milling Operations
    Autor
    Redondo Guevara, RaquelAutoridad UBU Orcid
    Santos González, PedroAutoridad UBU
    Bustillo Iglesias, AndrésAutoridad UBU Orcid
    Sedano, Javier
    Villar, José R.
    Correa, Maritza
    Alique, José Ramón
    Corchado, EmilioAutoridad UBU Orcid
    Publicado en
    Distributed Computing, Artificial Intelligence, Bioinformatics, Soft Computing, and Ambient Assisted Living, p. 1282–1291
    Editorial
    Springer
    Fecha de publicación
    2009
    ISBN
    978-3-642-02480-1
    DOI
    10.1007/978-3-642-02481-8_190
    Descripción
    Comunicación presentada en: 10th International Work-Conference on Artificial Neural Networks, IWANN 2009 Workshops, Salamanca, Spain, June 10-12, 2009. Proceedings, Part II
    Abstract
    In this paper we present a soft computing system developed to optimize the face milling operation under High Speed conditions in the manufacture of steel components like molds with deep cavities. This applied research presents a multidisciplinary study based on the application of neural projection models in conjunction with identification systems, in order to find the optimal operating conditions in this industrial issue. Sensors on a milling centre capture the data used in this industrial case study defined under the frame of a machine-tool that manufactures industrial tools. The presented model is based on a two-phase application. The first phase uses a neural projection model capable of determine if the data collected is informative enough. The second phase is focus on identifying a model for the face milling process based on low-order models such as Black Box ones. The whole system is capable of approximating the optimal form of the model. Finally, it is shown that the Box-Jenkins algorithm, which calculates the function of a linear system from its input and output samples, is the most appropriate model to control such industrial task for the case of steel tools.
    Materia
    Fresado
    Milling (Metal-work)
    Redes neuronales artificiales
    Neural networks (Computer science)
    URI
    https://hdl.handle.net/10259/11485
    Versión del editor
    https://doi.org/10.1007/978-3-642-02481-8_190
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