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Automatic pose estimation system for human faces based on bunch graph matching technology

机译:基于束图匹配技术的人面自动姿势估计系统

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We present an automatic module that can determine the pose of a human face from a digitized portrait-style image. The module is integrated into a larger system called PersonSpotter, which is able to recognize people by their faces coming from a live video stream of data. The pose estimation module is based on bunch graph matching and can distinguish between five different degrees of rotation in depth. The system features close to real-time performance, considerable decrease in data size and increase in the accuracy of pose recognition compared to similar systems developed in the past. Pose estimation success rate of 98.5% has been reached for a set of 210 faces rotated in various degrees and directions.
机译:我们介绍了一个自动模块,可以从数字化纵向形式图像确定人脸的姿势。该模块集成到一个名为PersonPotter的更大系统中,该系统能够通过来自实时视频流的脸部识别人们。姿势估计模块基于束图匹配,并且可以区分五个不同的旋转深度。与实时性能接近实时性能,数据大部分降低,与过去开发的类似系统相比,数据大小的准确性增加。对于以各种度和方向旋转的一组210面,达到了98.5%的姿势估计成功率。

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