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Robust Pedestrian Detection by Combining Visible and Thermal Infrared Cameras

机译:结合可见光和热红外摄像机进行可靠的行人检测

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摘要

With the development of intelligent surveillance systems, the need for accurate detection of pedestrians by cameras has increased. However, most of the previous studies use a single camera system, either a visible light or thermal camera, and their performances are affected by various factors such as shadow, illumination change, occlusion, and higher background temperatures. To overcome these problems, we propose a new method of detecting pedestrians using a dual camera system that combines visible light and thermal cameras, which are robust in various outdoor environments such as mornings, afternoons, night and rainy days. Our research is novel, compared to previous works, in the following four ways: First, we implement the dual camera system where the axes of visible light and thermal cameras are parallel in the horizontal direction. We obtain a geometric transform matrix that represents the relationship between these two camera axes. Second, two background images for visible light and thermal cameras are adaptively updated based on the pixel difference between an input thermal and pre-stored thermal background images. Third, by background subtraction of thermal image considering the temperature characteristics of background and size filtering with morphological operation, the candidates from whole image (CWI) in the thermal image is obtained. The positions of CWI (obtained by background subtraction and the procedures of shadow removal, morphological operation, size filtering, and filtering of the ratio of height to width) in the visible light image are projected on those in the thermal image by using the geometric transform matrix, and the searching regions for pedestrians are defined in the thermal image. Fourth, within these searching regions, the candidates from the searching image region (CSI) of pedestrians in the thermal image are detected. The final areas of pedestrians are located by combining the detected positions of the CWI and CSI of the thermal image based on OR operation. Experimental results showed that the average precision and recall of detecting pedestrians are 98.13% and 88.98%, respectively.
机译:随着智能监视系统的发展,对通过摄像机准确检测行人的需求日益增加。但是,大多数以前的研究都使用单个摄像头系统(可见光或热像仪),其性能受各种因素的影响,例如阴影,照明变化,遮挡和较高的背景温度。为了克服这些问题,我们提出了一种使用双摄像头系统检测行人的新方法,该系统将可见光和热像仪相结合,在各种室外环境(如早晨,下午,夜晚和雨天)中都很坚固。与以前的作品相比,我们的研究在以下四个方面是新颖的:首先,我们实现了双摄像头系统,其中可见光和热像仪的轴在水平方向上平行。我们获得了代表这两个相机轴之间关系的几何变换矩阵。其次,基于输入的热背景图像和预存储的热背景图像之间的像素差异,自适应地更新可见光和热相机的两个背景图像。第三,通过考虑背景的温度特性并使用形态学运算进行尺寸过滤,对热图像进行背景减法,从而获得热图像中的全图像(CWI)候选图像。通过几何变换将可见光图像中的CWI位置(通过背景扣除以及阴影去除,形态运算,尺寸过滤和高宽比的过滤步骤获得)投影到热图像中的位置上矩阵,并在热图像中定义行人的搜索区域。第四,在这些搜索区域内,检测热图像中行人的搜索图像区域(CSI)中的候选对象。通过基于“或”运算组合热图像的CWI和CSI的检测位置来定位行人的最终区域。实验结果表明,行人检测的平均精度和召回率分别为98.13%和88.98%。

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