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Human Detection Based on the Generation of a Background Image by Using a Far-Infrared Light Camera

机译:基于远红外摄像头基于背景图像生成的人体检测

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The need for computer vision-based human detection has increased in fields, such as security, intelligent surveillance and monitoring systems. However, performance enhancement of human detection based on visible light cameras is limited, because of factors, such as nonuniform illumination, shadows and low external light in the evening and night. Consequently, human detection based on thermal (far-infrared light) cameras has been considered as an alternative. However, its performance is influenced by the factors, such as low image resolution, low contrast and the large noises of thermal images. It is also affected by the high temperature of backgrounds during the day. To solve these problems, we propose a new method for detecting human areas in thermal camera images. Compared to previous works, the proposed research is novel in the following four aspects. One background image is generated by median and average filtering. Additional filtering procedures based on maximum gray level, size filtering and region erasing are applied to remove the human areas from the background image. Secondly, candidate human regions in the input image are located by combining the pixel and edge difference images between the input and background images. The thresholds for the difference images are adaptively determined based on the brightness of the generated background image. Noise components are removed by component labeling, a morphological operation and size filtering. Third, detected areas that may have more than two human regions are merged or separated based on the information in the horizontal and vertical histograms of the detected area. This procedure is adaptively operated based on the brightness of the generated background image. Fourth, a further procedure for the separation and removal of the candidate human regions is performed based on the size and ratio of the height to width information of the candidate regions considering the camera viewing direction and perspective projection. Experimental results with two types of databases confirm that the proposed method outperforms other methods.
机译:在诸如安全性,智能监视和监视系统等领域中,对基于计算机视觉的人体检测的需求已经增加。然而,由于诸如夜间和夜间的不均匀照明,阴影和低外部光之类的因素,基于可见光相机的人体检测的性能增强受到限制。因此,基于热(远红外)摄像机的人体检测已被视为替代方案。但是,其性能受诸如低图像分辨率,低对比度和热图像噪声大等因素的影响。它也受白天背景高温的影响。为了解决这些问题,我们提出了一种在热像仪图像中检测人体区域的新方法。与以前的作品相比,本文提出的研究在以下四个方面是新颖的。通过中值和均值过滤生成一张背景图像。基于最大灰度,大小过滤和区域擦除的其他过滤过程将应用于从背景图像中去除人的区域。其次,通过组合输入图像和背景图像之间的像素和边缘差异图像来定位输入图像中的候选人类区域。基于所生成的背景图像的亮度来自适应地确定差异图像的阈值。噪声成分可通过成分标记,形态操作和大小过滤除去。第三,基于被检测区域的水平和垂直直方图中的信息,合并或分离可能具有两个以上人类区域的被检测区域。基于生成的背景图像的亮度来自适应地操作该过程。第四,基于候选区域的高度和宽度信息的大小和比率,考虑照相机的观看方向和透视投影,执行进一步的分离和去除候选人类区域的过程。两种类型的数据库的实验结果证实,该方法优于其他方法。

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