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Automatic Frontal Face Reconstruction Approach for Pose Invariant Face Recognition

机译:姿态不变人脸识别的自动正面人脸重建方法

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Handling pose variations for face recognition system is a challenging task. The recognition rate is drastically decreasing with the images captured in uncontrolled environment having pose variations in yaw, pitch and roll angles. When the face image with frontal pose it is proved that the recognition system performs well. In this research an attempt is made to reconstruct frontal pose face images from non-frontal face images to improve the face recognition accuracy. By estimating the change in pose with respect to yaw, pitch and roll angles based on the landmark points best viewed side of the pose is identified. Using tilting, stretching and mirroring operation to the best viewed side, frontal pose is obtained. This approach is database independent, training free and no need to generate 3D model and not using any fitting approach, which is a complex task and handle any combination of roll, yaw, pitch angle up to ± 22.5 degrees only from the 2D landmark points. Experiments were conducted on FERET, HP, LFW, PUB-FIG data bases and the experimental result proves that our approach can handle the uncontrolled faces with arbitrary poses Experimental results on various controlled and uncontrolled poses proved the effectiveness of the proposed method.
机译:处理面部识别系统的姿势变化是一项艰巨的任务。随着在不受控制的环境中捕获的图像的偏航角,俯仰角和侧倾角的变化,识别率急剧下降。当具有正面姿势的面部图像被证明时,识别系统表现良好。在该研究中,尝试从非正面面部图像重构正面姿势面部图像以提高面部识别精度。通过估计姿势相对于偏航的变化,可以识别基于姿势的最佳观察面的界标点的俯仰和侧倾角。使用倾斜,拉伸和镜像操作到最佳视线,可获得正面姿势。这种方法是独立于数据库的,无需培训,无需生成3D模型,并且无需使用任何拟合方法,这是一项复杂的任务,仅从2D界标点开始即可处理高达±22.5度的滚动,偏航,俯仰角的任意组合。在FERET,HP,LFW,PUB-FIG数据库上进行了实验,实验结果证明我们的方法可以处理任意姿势的非受控面部。在各种受控和非受控姿势上的实验结果证明了该方法的有效性。

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