基于骨骼模型的人体步态性别分类

K. Arai, Rosa Andrie
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引用次数: 6

摘要

提出了用于性别分类的人体步态行走骨架模型及其实现方法。该模型基于形态学运算,与传统的骨骼模型相似,可以计算人体关节角度。提出了基于所提出的人体步态行走骨架模型的性别分类方法。通过中国科学院轮廓B类数据集的实验,证实了所提出的基于人体步态行走骨骼模型的性别分类方法,即使使用单幅相机采集的图像,也可以区分左右腿。同时验证了本文方法可以准确估计关节角并进行性别分类,分类正确率高达85.33%(比现有方法提高了11.8%)。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Gender Classification with Human Gait Based on Skeleton Model
Human gait walking skeleton model is proposed together with its implementation for gender classifications. The proposed model is based on morphological operations and is similar to the conventional skeleton model which allows calculations of joint angles of human body. Also gender classification method based on the proposed human gait walking skeleton model is proposed. Through experiments with the Class B dataset of Chinese Academy of Sciences (CASIA) silhouettes, it is confirmed that the proposed gender classification method utilizing human gait walking skeleton model allows discrimination between left and right legs even if a single camera acquired image is used. It is also confirmed that the proposed method allows estimation of joint angles accurately together with gender classification with high percent correct classification of 85.33% (it is 11.8% better classification accuracy comparing to the existing method).
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