• Resumo

    Correção de Pose Facial a Partir de Modelos 3D

    Data de publicação: 04/09/2020

    ABSTRACT
    Facial recognition systems have to deal with a variety of problems
    for better accuracy results, such as lighting, obstruction, and pose
    variation, which occur when comparing an image to be detected
    with a previously identified image. In this context, this work aims
    to use a pose alignment technique developed by Gang Pan. Together
    with the Iterative Closest Ooint (ICP) and Average Face
    Model (AFM) techniques, in order to perform a pose correction,
    a beginning of 3D facial models, in fully faces (90â—¦) or separately
    rotated, and test the result of this facial alignment with the Principal
    Component Analysis (PCA), Linear Discriminant Analysis
    (LDA), and Support Vector Machine (SVM) recognition and classification
    algorithms related to the Local Binary Pattern (LBP), Discrete
    Cosine Transform (DCT), and Gaussian Filter preprocessing techniques.
    The classification algorithms will be tested in parallel and
    independently counted, where one result will not interfere in any
    other case, with the use of identifying which algorithm has the best
    accuracy. To perform the tests, a facial, text, infrared and visible
    light database was created with frontal images on the left, right,
    top, bottom and random face pose, resulting in a population of 90
    subjects and approximately 1600 colors.

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