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Real-Time Upper Body Detection and 3D Pose Estimation in Monoscopic Images

机译:单声道图像中实时上身检测和3D姿态估计

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This paper presents a novel solution to the difficult task of both detecting and estimating the 3D pose of humans in monoscopic images. The approach consists of two parts. Firstly the location of a human is identified by a probabalistic assembly of detected body parts. Detectors for the face, torso and hands are learnt using adaBoost. A pose likliehood is then obtained using an a priori mixture model on body configuration and possible configurations assembled from available evidence using RANSAC. Once a human has been detected, the location is used to initialise a matching algorithm which matches the silhouette and edge map of a subject with a 3D model. This is done efficiently using chamfer matching, integral images and pose estimation from the initial detection stage. We demonstrate the application of the approach to large, cluttered natural images and at near framerate operation (16fps) on lower resolution video streams.
机译:本文提出了一种新的解决方案,对检测和估算单视觉图像中的3D姿势的困难任务。该方法包括两部分。首先,人们的位置由检测到的身体部位的概率组件识别。使用Adaboost学习脸部,躯干和手的探测器。然后使用主体配置上的先验混合模型获得姿势似的力量,并且可以使用Ransac从可用证据组装的可能配置。一旦检测到人类,该位置用于初始化匹配算法,该匹配算法与具有3D模型的对象的轮廓和边缘映射匹配。这是有效地使用倒角匹配,积分图像和来自初始检测阶段的姿势估计来完成的。我们证明了在较低分辨率视频流上的近距离操作和近帧间操作(16fps)近的跨越自然图像和近的跨越操作(16fps)的应用。

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