基于足迹的gabor小波和K-NN方法的人体身高和体重分类

Ryan Bagus Wicaksono, S. Aulia, S. Hadiyoso, Bambang Hidayat
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引用次数: 3

摘要

身高和体重是识别一个人的参数,尤其是对于法医来说。识别身高和体重通常是手动完成的。除了手动使用身高测量设备和磅秤外,还可以使用与脚长相关的信息。身高和脚长之间有一种关系,可以用与体重相同的相关系数(r)来表示。因此,本研究在安卓系统上实现了一个基于足迹图像的人体身高和体重测量系统。本研究中使用的方法是Gabor小波和k-最近邻(k-NN)。仿真结果产生了75%的最佳精度。该系统还可用于根据身体质量指数(BMI)对理想的身体水平进行分类。该系统能够处理图像,平均计算时间为8.92秒。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Human height and weight classification based on footprint using gabor wavelet and K-NN methods
Height and weight are parameters to identify a person, especially for a forensic. To identify height and weight is usually done manually. In addition to manually using height measuring devices and scales, you can also use information related to the foot length. There is a relationship between height and foot length can be expressed in the correlation coefficient (r) as same as for weight. Therefore, in this study, a system for measuring human height and weight based on images of the footprint is implemented on Android. The methods used in this study are Gabor Wavelet and k-Nearest Neighbor (k-NN). The simulation results generate the best accuracy of 75%. The system can also used to categorize the ideal body level according to the Body Mass Index (BMI). The system is able to process images with an average computation time of 8.92 seconds.  
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