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A Three-Dimensional Real-Time Gait-Based Age Detection System Using Machine Learning
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作者 Muhammad Azhar Sehat Ullah +3 位作者 Khalil Ullah Habib Shah Abdallah Namoun Khaliq Ur Rahman 《Computers, Materials & Continua》 SCIE EI 2023年第4期165-182,共18页
Human biometric analysis has gotten much attention due to itswidespread use in different research areas, such as security, surveillance,health, human identification, and classification. Human gait is one of the keyhum... Human biometric analysis has gotten much attention due to itswidespread use in different research areas, such as security, surveillance,health, human identification, and classification. Human gait is one of the keyhuman traits that can identify and classify humans based on their age, gender,and ethnicity. Different approaches have been proposed for the estimation ofhuman age based on gait so far. However, challenges are there, for which anefficient, low-cost technique or algorithm is needed. In this paper, we proposea three-dimensional real-time gait-based age detection system using a machinelearning approach. The proposed system consists of training and testingphases. The proposed training phase consists of gait features extraction usingthe Microsoft Kinect (MS Kinect) controller, dataset generation based onjoints’ position, pre-processing of gait features, feature selection by calculatingthe Standard error and Standard deviation of the arithmetic mean and bestmodel selection using R2 and adjusted R2 techniques. T-test and ANOVAtechniques show that nine joints (right shoulder, right elbow, right hand, leftknee, right knee, right ankle, left ankle, left, and right foot) are statisticallysignificant at a 5% level of significance for age estimation. The proposedtesting phase correctly predicts the age of a walking person using the resultsobtained from the training phase. The proposed approach is evaluated on thedata that is experimentally recorded from the user in a real-time scenario.Fifty (50) volunteers of different ages participated in the experimental study.Using the limited features, the proposed method estimates the age with 98.0%accuracy on experimental images acquired in real-time via a classical generallinear regression model. 展开更多
关键词 age estimation gait biometrics classical linear regression model
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基于社交网络LinkedIn的用户年龄估计
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作者 师磊磊 万健 +1 位作者 司华友 陈彬彬 《浙江科技学院学报》 CAS 2019年第6期464-469,共6页
基于职业社交网络LinkedIn的用户年龄估计方法的研究,对用户的职业发展趋势、职业适应性分析,以及设计更合理的职业推荐系统具有积极的意义。通过挖掘分析用户的个人资料,设计年龄估计模型(age estimation method,AEM),描述年龄与教育... 基于职业社交网络LinkedIn的用户年龄估计方法的研究,对用户的职业发展趋势、职业适应性分析,以及设计更合理的职业推荐系统具有积极的意义。通过挖掘分析用户的个人资料,设计年龄估计模型(age estimation method,AEM),描述年龄与教育和工作经历的关系。结果表明,在社交网络LinkedIn中,AEM较人脸识别年龄估计方法有更高的准确性,体现AEM具有一定的研究价值。 展开更多
关键词 年龄估计模型 人脸识别 LinkedIn
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