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    Matching user queries in natural language with Cyber-Physical Systems using deep learning through a Transformer approach

    Autor: 
    Llopis, Juan Alberto
    ;
    Fernández-García, Antonio Jesús
    ;
    Criado, Javier
    ;
    Iribarne, Luis
    Fecha: 
    2022
    Palabra clave: 
    deep learning; natural language; recommender system; transformer; web of things; Scopus(2)
    Revista / editorial: 
    16th International Conference on INnovations in Intelligent SysTems and Applications, INISTA 2022
    Citación: 
    J. A. Llopis, A. J. Fernández-García, J. Criado and L. Iribarne, "Matching user queries in natural language with Cyber-Physical Systems using deep learning through a Transformer approach," 2022 International Conference on INnovations in Intelligent SysTems and Applications (INISTA), Biarritz, France, 2022, pp. 1-6, doi: 10.1109/INISTA55318.2022.9894230.
    Tipo de Ítem: 
    conferenceObject
    URI: 
    https://reunir.unir.net/handle/123456789/14410
    DOI: 
    https://doi.org/10.1109/INISTA55318.2022.9894230
    Dirección web: 
    https://ieeexplore.ieee.org/document/9894230
    Resumen:
    IoT devices, as a result of technological advancements, may have different ways of operating and communicating despite having the same features. Therefore, finding a specific device among the whole of deployed devices can be a difficult task. To help find devices in an efficient and timely way, we propose a recommender system using deep learning for matching W3C Web of Things artifacts (called as WoT devices) with natural language queries. The proposal uses the Transformer algorithm to study the usage of deep learning to facilitate searching for devices, assuming that the model can be used as a recommendation tool to match WoT devices in Cyber-Physical Systems.
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