远程人脸识别的细心感知

Hélio Perroni Filho, Aleksander Trajcevski, K. Bhargava, Nizwa Javed, J. Elder
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引用次数: 0

摘要

为了提高效率,社交机器人必须可靠地检测和识别所有视觉方向和远近领域的人。一个主要的挑战是分辨率/视野的权衡;在这里,我们提出并评估了一种新的关注传感解决方案。全景低分辨率预关注传感由一系列广角摄像头提供,而关注传感则由高分辨率窄视场摄像头和基于反光镜的凝视偏转系统实现。对一个新数据集的定量评估表明,这种专注的感知策略可以在~35m的距离内产生良好的全景人脸识别性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Attentive Sensing for Long-Range Face Recognition
To be effective, a social robot must reliably detect and recognize people in all visual directions and in both near and far fields. A major challenge is the resolution/field-of-view tradeoff; here we propose and evaluate a novel attentive sensing solution. Panoramic low-resolution pre-attentive sensing is provided by an array of wide-angle cameras, while attentive sensing is achieved with a high-resolution, narrow field-of-view camera and a mirror-based gaze deflection system. Quantitative evaluation on a novel dataset shows that this attentive sensing strategy can yield good panoramic face recognition performance in the wild out to distances of ~35m.
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