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Classification of Building Information Model (BIM) Structures with Deep Learning

  • Francesco Lomio
  • , Ricardo Farinha
  • , Mauri Laasonen
  • , Heikki Huttunen

    Tutkimustuotos: KonferenssiartikkeliTieteellinenvertaisarvioitu

    27 Sitaatiot (Scopus)

    Abstrakti

    In this work we study an application of machine learning to the construction industry and we use classical and modern machine learning methods to categorize images of building designs into three classes: Apartment building, Industrial building or Other. No real images are used, but only images extracted from Building Information Model (BIM) software, as these are used by the construction industry to store building designs. For this task, we compared four different methods: the first is based on classical machine learning, where Histogram of Oriented Gradients (HOG) was used for feature extraction and a Support Vector Machine (SVM) for classification; the other three methods are based on deep learning, covering common pre-trained networks as well as ones designed from scratch. To validate the accuracy of the models, a database of 240 images was used. The accuracy achieved is 57% for the HOG + SVM model, and above 89% for the neural networks.
    AlkuperäiskieliEnglanti
    Otsikko2018 7th European Workshop on Visual Information Processing (EUVIP)
    KustantajaIEEE
    ISBN (elektroninen)978-1-5386-6897-9
    ISBN (painettu)978-1-5386-6898-6
    DOI - pysyväislinkit
    TilaJulkaistu - marrask. 2018
    OKM-julkaisutyyppiA4 Artikkeli konferenssijulkaisussa
    TapahtumaEUROPEAN WORKSHOP ON VISUAL INFORMATION PROCESSING -
    Kesto: 1 tammik. 1900 → …

    Julkaisusarja

    Nimi
    ISSN (elektroninen)2471-8963

    Conference

    ConferenceEUROPEAN WORKSHOP ON VISUAL INFORMATION PROCESSING
    Ajanjakso1/01/00 → …

    Julkaisufoorumi-taso

    • Jufo-taso 1

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