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Receptionist and Security Robot Using Face Recognition with Standardized Data Collecting Method

机译:接待员和安全机器人使用面部识别标准化数据收集方法

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Face recognition has become the front runner for deep learning applications in the real world and this paper focuses on its implementation in a human-robot interaction and security system. For this specific project, it is inherent that restraints are created to allow the system to produce greater performance within the requirements of a receptionist and security robot. A k-nearest neighbors classifier is applied to further enhance the accuracy of face recognition. By sequencing images from videos, we create large datasets to train our own classifier in various conditions to increase its accuracy and lower false-positive rates in poor lighting environments. With the goal of creating a service robot, we have standardized our method of data collection for new inputs that will assist the recognition process in variable conditions of operation. The resulting product is a system that can accurately predict known and unknown faces with Asian features.
机译:面部识别已成为现实世界中深度学习应用的前跑步者,本文重点介绍其在人机交互和安全系统中的实现。对于此特定项目,因此创建了限制,以允许系统在接待员和安全机器人的要求中产生更大的性能。应用K-最近的邻居分类器以进一步提高人脸识别的准确性。通过从视频中测序图像,我们创建大型数据集以在各种条件下培训我们自己的分类器,以提高其准确性和较低的照明环境中的假阳性率。通过创建服务机器人的目标,我们已经标准化了我们对新输入的数据收集方法,该输入将有助于在可变操作条件下进行识别过程。由此产生的产品是一种系统,可以准确地预测具有亚洲特征的已知和未知面。

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