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3-D face modeling from a 2-D image with shape and head pose estimation.

机译:从具有形状和头部姿势估计的2-D图像进行3-D人脸建模。

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摘要

This paper presents 3-D face modeling with head pose and depth information estimated from a 2-D query face image. Many recent approaches to 3-D face modeling are based on a 3-D morphable model that separately encodes the shape and texture in a parameterized model. The model parameters are often obtained by applying statistical analysis to a set of scanned 3-D faces. Such approaches tend to depend on the number and quality of scanned 3-D faces, which are difficult to obtain and computationally intensive. To overcome the limitations of 3-D morphable models, several modeling techniques from 2-D images have been proposed. We propose a novel framework for depth estimation from a single 2-D image with an arbitrary pose. The proposed scheme uses a set of facial features in a query face image and a reference 3-D face model to estimate the head pose angles of the face. The depth information of the subject at each feature point is represented by the depth information of the reference 3-D face model multiplied by a vector of scale factors. We use the positions of a set of facial feature points on the query 2-D image to deform the reference face dense model into a person specific 3-D face by minimizing an objective function. The objective function is defined as the feature disparity between the facial features in the face image and the corresponding 3-D facial features on the rotated reference model projected onto 2-D space. The pose and depth parameters are iteratively refined until stopping criteria are reached. The proposed method requires only a face image of arbitrary pose for the reconstruction of the corresponding 3-D face dense model with texture. Experiment results with USF Human-ID and Pointing'04 databases show that the proposed approach is effective to estimate depth and head pose information with a single 2-D image.
机译:本文介绍了3D人脸建模,其中包含从2D查询人脸图像估计的头部姿势和深度信息。 3-D人脸建模的许多最新方法都基于3-D可变形模型,该模型在参数化模型中分别对形状和纹理进行编码。通常通过对一组扫描的3-D面进行统计分析来获得模型参数。这样的方法倾向于取决于扫描的3-D面部的数量和质量,这很难获得并且计算量很大。为了克服3-D可变形模型的局限性,已经提出了几种来自2-D图像的建模技术。我们提出了一种新颖的框架,用于从具有任意姿势的单个二维图像进行深度估计。所提出的方案在查询的面部图像中使用一组面部特征和参考3-D面部模型来估计面部的头部姿势角度。在每个特征点处的对象的深度信息由参考3-D面部模型的深度信息乘以比例因子的矢量表示。我们使用查询2-D图像上的一组面部特征点的位置,通过最小化目标函数,将参考面部密集模型变形为特定于人的3-D面部。目标函数定义为面部图像中的面部特征与投影到二维空间上的旋转参考模型上相应的3-D面部特征之间的特征差异。反复调整姿势和深度参数,直到达到停止标准为止。所提出的方法仅需要具有任意姿势的面部图像即可用于具有纹理的相应3-D面部密集模型的重建。 USF Human-ID和Pointing'04数据库的实验结果表明,该方法可有效地利用单个二维图像估计深度和头部姿态信息。

著录项

  • 作者

    Oyini Mbouna, Ralph.;

  • 作者单位

    Temple University.;

  • 授予单位 Temple University.;
  • 学科 Electrical engineering.;Computer science.
  • 学位 Ph.D.
  • 年度 2014
  • 页码 106 p.
  • 总页数 106
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-17 11:54:07

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