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首页> 外文期刊>Biomedical Engineering: Applications, Basis and Communications >EXTRACTING FEATURES OF THE HUMAN FACE FROM RGB-D IMAGES TO PLAN FACIAL SURGERIES
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EXTRACTING FEATURES OF THE HUMAN FACE FROM RGB-D IMAGES TO PLAN FACIAL SURGERIES

机译:从RGB-D图像中提取人脸的特征,计划面部手术

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摘要

Biometric identification of the human face is a pervasive subject which deals with a wide range of disciplines such as image processing, computer vision, pattern recognition, artificial intelligence, and cognitive psychology. Extracting key face points for developing software and commercial devices of face surgery analysis is one of the most challenging fields in computer image and vision processing. Many studies have developed a variety of techniques to extract facial features from color and gray images. In recent years, using depth information has opened up new approaches to researchers in the field of image processing. Hence, in this study, a statistical method is proposed to extract key nose points from color-depth images (RGB-D) of the face front view. In this study, the Microsoft Kinect sensor is used to produce the face RGB-D images. To assess the capability of the proposed method, this algorithm is applied to 20 RGB-D face images from the database collected in the ICT lab of Sahand University of Technology and promising results are achieved for extracting key points of the face. The results of this study indicated that using the available information in two different color-depth bands could make key points of the face more easily accessible and bring better results and we can conclude that the proposed algorithm provided a promising outcome for extracting the positions of key points.
机译:人脸的生物识别是一种普遍存在的主题,涉及广泛的学科,如图像处理,计算机视觉,模式识别,人工智能和认知心理。提取用于开发软件和面部手术分析的商业设备的关键面点是计算机图像和视觉处理中最具挑战性的领域之一。许多研究开发了各种技巧,以从颜色和灰色图像提取面部特征。近年来,使用深度信息已经为图像处理领域的研究人员开辟了新方法。因此,在本研究中,提出了一种从面部正视图的颜色深度图像(RGB-D)中提取键鼻点。在本研究中,Microsoft Kinect传感器用于产生面部RGB-D图像。为了评估所提出的方法的能力,将该算法应用于来自萨哈兰工业大学ICT实验室的数据库的20个RGB-D面部图像,并实现了提取脸部的关键点的有希望的结果。本研究的结果表明,在两个不同的颜色深度频带中使用可用信息可以使面孔的关键点更容易访问,并带来更好的结果,我们可以得出结论,所提出的算法提供了提取关键位置的有希望的结果要点。

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