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Human age classification based on gait parameters using a Gait Energy Image projection model

机译:使用步态能量图像投影模型基于步态参数进行人类年龄分类

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With the increasing significance of age classification in present days, researchers are working on different methods to classify a persons' age. Facial based and Gait based are the major trail methods for age classification. Actually, the facial based approach is not so accurate if the person is far from the camera. Whereas, gait is a preferable solution because it is quick to respond to age parameters. In this paper, Gait energy image Projection model (GPM) is the proposed method for age classification, which combines both spatiotemporal Gait energy image Longitudinal projection (GLP) and Gait energy image Transverse Projection (GTP). The proposed method mainly focuses on four parameters namely head movement, body size, arm movement and Stride length. Regarding classification of age, OU-ISIR dataset is considered and the SVM is selected as the classifier. Moreover, obtained experimental results are compared with the existing ones like FED, GEI and SM. Further Descriptors are fused to check whether they give better results or not.
机译:随着当今年龄分类的重要性日益提高,研究人员正在研究不同的方法来对一个人的年龄进行分类。基于面部和基于步态的方法是用于年龄分类的主要方法。实际上,如果人离相机很远,则基于面部的方法就不太准确。而步态是一种较好的解决方案,因为它可以快速响应年龄参数。本文提出了步态能量图像投影模型(GPM)进行年龄分类的方法,该模型结合了时空步态能量图像纵向投影(GLP)和步态能量图像横向投影(GTP)。所提出的方法主要集中在四个参数,即头部运动,身体大小,手臂运动和步幅长度。关于年龄分类,考虑OU-ISIR数据集,并选择SVM作为分类器。此外,将获得的实验结果与现有的FED,GEI和SM进行了比较。进一步的描述符被融合以检查它们是否给出更好的结果。

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