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首页> 外文期刊>American Journal of Computer Science and Technology >Face Detection in Crowded Human Images by Bi-Linear Interpolation and Adaptive Histogram Equalization Enhancement
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Face Detection in Crowded Human Images by Bi-Linear Interpolation and Adaptive Histogram Equalization Enhancement

机译:双线性插值和自适应直方图均衡增强的脸部检测

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Face detection is a common computer technology being used in human identification applications. It can also refer to the process of locating human faces in a visual scene. Face detection is a branched field of object detection where all objects in an image are detected including several classes like cars, trees, humans... etc. Also face detection problems branch into a lot of cases, some focus on frontal faces, others focus on side pose and so on. In this paper, a new face detection method based on Bilinear Interpolation image zooming method and image enhancement by Adaptive Histogram Equalization (AHE) method is proposed. The new method gives an encouraging results for crowded human images. By comparing the proposed method with the Viola-Jones algorithm, face detector using the cascade object detector, which supported in MATLAB, the new method gives excellent results in detecting human faces with different resolutions, poses and sizes. It succeeds in detecting most of the human faces in the tested images regardless of image sizes. The new method is tested on several images in Pratheepan dataset with crowded humans. Also, I tested the new method on many images collected from the Internet, whose can be classified as crowded human images. Experimental results show that the proposed Ad_L_Hist method is more efficient in detecting human faces in crowded human images.
机译:面部检测是用于人类识别应用中的普通计算机技术。它还可以指在视觉场景中定位人面的过程。面部检测是对象检测的分支领域,其中检测到图像中的所有对象,包括若干类,如汽车,树,人类......也面临着大量案例的探测问题,一些专注于正面脸,其他焦点在侧面姿势等。本文提出了一种基于双线性插值图像变焦方法和自适应直方图均衡(AHE)方法的新的面部检测方法。新方法给出了拥挤的人类形象的令人鼓舞的结果。通过将所提出的方法与Viola-Jones算法进行比较,使用支持MATLAB的级联对象检测器的面部检测器,新方法提供了优异的导致检测不同分辨率,姿势和尺寸的人面。它成功地检测到测试图像中的大多数人面,无论图像尺寸如何。新方法在PratheeAn DataSet中的几张图像上进行了测试,拥挤的人类。此外,我在从互联网收集的许多图像上测试了新方法,其可以被归类为拥挤的人类图像。实验结果表明,拟议的AD_L_HIST方法在侦测拥挤人类图像中的人面上更有效。

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