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SELF LEARNING FACE RECOGNITION USING DEPTH BASED TRACKING FOR DATABASE GENERATION AND UPDATE

机译:使用基于深度的跟踪进行数据库生成和更新的自学人脸识别

摘要

Face recognition training database generation technique embodiments are presented that generally involve collecting characterizations of a person's face that are captured over time and as the person moves through an environment, to create a training database of facial characterizations for that person. As the facial characterizations are captured over time, they are will represent the person's face as viewed from various angles and distances, different resolutions, and under different environmental conditions (e.g., lighting and haze conditions). Further, over a long period of time where facial characterizations of a person are collected periodically, these characterizations can represent an evolution in the appearance of the person. This produces a rich training resource for use in face recognition systems. In addition, since a person's face recognition training database can be established before it is needed by a face recognition system, once employed, the training will be quicker.
机译:提出了面部识别训练数据库生成技术实施例,该实施例通常涉及收集随着时间的流逝并且随着人在环境中移动而捕获的人脸的特征,以创建该人的面部特征的训练数据库。随着时间的推移捕获面部特征,它们将代表从各种角度和距离,不同的分辨率以及不同的环境条件(例如光照和雾度条件)观察到的人脸。此外,在周期性地收集人的面部特征的长时间内,这些特征可以代表人的外观的发展。这产生了用于面部识别系统的丰富训练资源。另外,由于可以在面部识别系统需要人的面部识别训练数据库之前就建立该人的面部识别训练数据库,因此该训练将更快。

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