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Quantitative Analysis of 3D Face Reconstruction using Annealing based Approach

机译:基于退火的方法的3D面重建定量分析

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3D shape reconstruction from 2D images is an inverse problem, and is therefore mathematically ill-posed. In most of the previous research no quantitative measures of quality of 3D reconstruction have been used. Instead visual and indirect measures such as recognition results are used as the measure of quality of 3D reconstruction. This paper presents an analysis by synthesis method for solving 3D face reconstruction problems using anatomical landmarks and intensity from 2D frontal face images. For evaluating the quality of 3D shape reconstruction two objective measures 3D shape error and 2D shape error are proposed. In order to improve the quality of 3D shape reconstruction a number of steps are proposed. Firstly, the 3D shape model is constructed by establishing a dense correspondence using rigid and non rigid surface registration. Secondly shape estimation is made robust by incorporating simulated annealing into the multidimensional amoeba optimization used for recovering shape parameters.
机译:从2D图像中的3D形状重建是一个逆问题,因此在数学上没有提出。在以前的大多数研究中,已经使用了3D重建质量的定量测量。相反,诸如识别结果之类的视觉和间接措施被用作3D重建质量的量度。本文通过从2D正面图像使用解剖学地标和强度来求解3D面部重建问题的合成方法进行分析。为了评估3D形重建的质量,提出了两个目标测量3D形状误差和2D形状误差。为了提高3D形状重建的质量,提出了许多步骤。首先,通过使用刚性和非刚性表面配准通过建立密集的对应来构造3D形模型。其次,通过将模拟退火结合到用于恢复形状参数的多维AmoEBA优化来实现稳健。

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