Perspective projection for variance pose face recognition from camera calibration

M. M. Fakhir, W. L. Woo, Jonathon A. Chambers, S. Dlay
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Abstract

Variance pose is an important research topic in face recognition. The alteration of distance parameters across variance pose face features is a challenging. We provide a solution for this problem using perspective projection for variance pose face recognition. Our method infers intrinsic camera parameters of the image which enable the projection of the image plane into 3D. After this, face box tracking and centre of eyes detection can be identified using our novel technique to verify the virtual face feature measurements. The coordinate system of the perspective projection for face tracking allows the holistic dimensions for the face to be fixed in different orientations. The training of frontal images and the rest of the poses on FERET database determine the distance from the centre of eyes to the corner of box face. The recognition system compares the gallery of images against different poses. The system initially utilises information on position of both eyes then focuses principally on closest eye in order to gather data with greater reliability. Differentiation between the distances and position of the right and left eyes is a unique feature of our work with our algorithm outperforming other state of the art algorithms thus enabling stable measurement in variance pose for each individual.
基于摄像机标定的视角投影方差姿态人脸识别
方差姿态是人脸识别中的一个重要研究课题。距离参数在不同姿态特征间的变化是一个具有挑战性的问题。针对这一问题,我们提出了一种利用透视投影进行方差姿态人脸识别的方法。我们的方法推断图像的内在相机参数,使图像平面投影到三维。在此之后,利用我们的新技术可以识别人脸盒跟踪和眼中心检测,以验证虚拟人脸特征测量值。人脸跟踪的透视投影坐标系允许在不同方向上固定人脸的整体尺寸。正面图像和FERET数据库中其他姿态的训练决定了从眼睛中心到盒子脸角的距离。该识别系统将图像库与不同的姿势进行比较。该系统最初利用双眼的位置信息,然后主要关注最近的眼睛,以便更可靠地收集数据。区分左右眼的距离和位置是我们工作的一个独特特征,我们的算法优于其他最先进的算法,从而能够稳定地测量每个人的方差姿势。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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