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A Parametric Approach to Gait Signature Extraction for Human Motion Identification

机译:用于人体运动识别的步态特征提取的参数方法

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The extraction and analysis of human gait characteristics using image sequences are currently an intense area of research. Identifying individuals using biometric methods has recently gained growing interest from computer vision researchers for security purposes at places like airport, banks etc. Gait recognition aims essentially to address this problem by identifying people at a distance based on the way they walk i.e., by tracking a number of feature points or gait signatures. We describe a new model-based feature extraction analysis is presented using Hough transform technique that helps to read the essential parameters used to generate gait signatures that automatically extracts and describes human gait for recognition. In the preprocessing steps, the picture frames taken from video sequences are given as input to Canny edge detection algorithm which helps to detect edges of the image by extracting foreground from background also it reduces the noise using Gaussian filter. The output from edge detection is given as input to the Hough transform. Using the Hough transform image, a clear line based model is designed to extract gait signatures. A major difficulty of the existing gait signature extraction methods are the good tracking the requisite feature points. In the proposed work, we have used five parameters to successfully extract the gait signatures. It is observed that when the camera is placed at 90 and 270 degrees, all the parameters used in the proposed work are clearly visible. The efficiency of the model is tested on a variety of body position and stride parameters recovered in different viewing conditions on a database consisting of 20 subjects walking at both an angled and frontal-parallel view with respect to the camera, both indoors and outdoors and find the method to be highly successful. The test results show good clarity rates, with a high level of confidence and it is suggested that the algorithm reported here could form the basis of a robust system for monitoring of gait.
机译:使用图像序列提取和分析人的步态特征是当前研究的热点。出于安全目的,最近在计算机视觉研究人员中,使用生物特征识别方法来识别个人的兴趣日益浓厚,例如机场,银行等。步态识别的主要目的是通过根据人们的行走方式(即通过追踪某人)来识别他们的距离,从而解决这一问题。特征点或步态签名的数量。我们描述了一种使用霍夫变换技术提出的基于模型的新特征提取分析,该技术有助于读取用于生成步态特征的基本参数,该步态特征会自动提取并描述用于识别的步态。在预处理步骤中,将从视频序列中获取的图像帧作为输入输入给Canny边缘检测算法,该算法通过从背景中提取前景来帮助检测图像的边缘,并且使用高斯滤波器降低了噪声。边缘检测的输出作为霍夫变换的输入。使用霍夫变换图像,设计了基于清晰线条的模型来提取步态特征。现有步态特征提取方法的主要困难是对所需特征点的良好跟踪。在拟议的工作中,我们使用了五个参数来成功提取步态特征。可以观察到,将摄像机放置在90度和270度的位置时,在建议的工作中使用的所有参数都清晰可见。该模型的效率在数据库中的20种受检者在相对于摄像机的倾斜和正面平行视图上行走时,在不同的观看条件下对各种身体位置和步幅参数进行了测试,以发现室内和室外的情况。该方法非常成功。测试结果显示出良好的清晰度率,并具有较高的置信度,建议此处报告的算法可以构成鲁棒的步态监测系统的基础。

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