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Evaluation of Head Pose Estimation for Studio Data

机译:Studio数据的头姿势估计的评估

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摘要

This paper introduces our head pose estimation system that localizes nose-tip of the faces and estimate head poses in studio quality pictures. After the nose-tip in the training data are manually labeled, the appearance variation caused by head pose changes is characterized by tensor model. Given images with unknown head pose and nose-tip location, the nose-tip of the face is localized in a coarse-to-fine fashion, and the head pose is estimated simultaneously by the head pose tensor model. The image patches at the localized nose tips are then cropped and sent to two other head pose estimators based on LEA and PCA techniques. We evaluated our system on the Pointing'04 head pose image database. With the nose-tip location known, our head pose estimators can achieve 94 ~ 96% head pose classification accuracy(within ±15°). With nose-tip unknown, we achieves 85% nose-tip localization accuracy(within 3 pixels from the ground truth), and 81 ~ 84% head pose classification accuracy(within ±15°).
机译:本文介绍了我们的头部姿势估计系统,该系统可以定位脸部的鼻尖并估计演播室质量图片中的头部姿势。手动标记训练数据中的鼻尖后,用张量模型表征由头部姿势变化引起的外观变化。给定具有未知头部姿势和鼻尖位置的图像,脸部的鼻尖以从粗到精细的方式进行定位,并且头部姿势张量模型同时估计了头部姿势。然后裁剪局部鼻子尖端的图像斑块,并将其发送到基于LEA和PCA技术的其他两个头部姿势估计器。我们在Pointing'04头部姿势图像数据库上评估了我们的系统。在已知鼻尖位置的情况下,我们的头部姿势估计器可以达到94〜96%的头部姿势分类精度(在±15°之内)。在不知道鼻尖的情况下,我们可以达到85%的鼻尖定位精度(距离地面真相3像素以内),以及81〜84%的头部姿势分类精度(在±15°以内)。

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