一种基于加权中值滤波平滑的新型鼻尖检测方法,应用于不同姿态的三维人脸图像

P. Bagchi, D. Bhattacharjee, M. Nasipuri, D. K. Basu
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引用次数: 18

摘要

本文基于对三维人脸图像进行平滑处理,然后进行特征检测,即鼻尖检测。该方法采用加权网格中值滤波技术进行平滑处理。在这种平滑技术中,我们在三维人脸图像中建立特定点周围的邻域,并将其替换为三维人脸图像中周围点的加权值。将平滑技术应用于三维人脸图像后,实验结果表明,与没有平滑的算法相比,我们获得了相当大的改进。我们在这里使用了最大强度算法来检测鼻尖,这种方法可以正确地检测任何姿势的鼻尖,即沿着X, Y和Z轴。与没有平滑的方法相比,目前的技术让我们成功地处理了542张3D人脸图像中的535张,而没有平滑的方法只处理了542张3D人脸图像中的521张。因此,我们获得了98.70%的性能优于无平滑算法的96.12%的性能。所有实验均在FRAV3D数据库上进行。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A novel approach for nose tip detection using smoothing by weighted median filtering applied to 3D face images in variant poses
This paper is based on n application of smoothing of 3D face images followed by feature detection i.e. detecting the nose tip. The present method uses a weighted mesh median filtering technique for smoothing. In this present smoothing technique we have built the neighborhood surrounding a particular point in 3D face and replaced that with the weighted value of the surrounding points in 3D face image. After applying the smoothing technique to the 3D face images our experimental results show that we have obtained considerable improvement as compared to the algorithm without smoothing. We have used here the maximum intensity algorithm for detecting the nose-tip and this method correctly detects the nose-tip in case of any pose i.e. along X, Y, and Z axes. The present technique gave us worked successfully on 535 out of 542 3D face images as compared to the method without smoothing which worked only on 521 3D face images out of 542 face images. Thus we have obtained a 98.70% performance rate over 96.12% performance rate of the algorithm without smoothing. All the experiments have been performed on the FRAV3D database.
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