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首页> 外文期刊>International Archives of the Photogrammetry, Remote Sensing and Spatial Information Sciences >MOVING OBJECT DETECTION USING SPATIAL CORRELATION IN LAB COLOUR SPACE
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MOVING OBJECT DETECTION USING SPATIAL CORRELATION IN LAB COLOUR SPACE

机译:在实验室颜色空间中使用空间相关性进行运动物体检测

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摘要

Background subtraction-based techniques of moving object detection are very common in computer vision programs. Each technique of background subtraction employs image thresholding algorithms. Different thresholding methods generate varying threshold values that provide dissimilar moving object detection results. A majority of background subtraction techniques use grey images which reduce the computational cost but statistics-based image thresholding methods do not consider the spatial distribution of pixels. In this study, authors have developed a background subtraction technique using Lab colour space and used spatial correlations for image thresholding. Four thresholding methods using spatial correlation are developed by computing the difference between opposite colour pairs of background and foreground frames. Out of 9 indoor and outdoor scenes, the object is detected successfully in 7 scenes whereas existing background subtraction technique using grey images with commonly used thresholding methods detected moving objects in 1–5 scenes. Shape and boundaries of detected objects are also better defined using the developed technique.
机译:基于背景减法的运动对象检测技术在计算机视觉程序中非常普遍。背景扣除的每种技术都采用图像阈值算法。不同的阈值化方法会生成变化的阈值,这些阈值会提供不同的运动对象检测结果。大多数背景减法技术使用降低了计算成本的灰度图像,但是基于统计的图像阈值化方法没有考虑像素的空间分布。在这项研究中,作者开发了一种使用Lab色彩空间的背景减法技术,并将空间相关性用于图像阈值化。通过计算背景和前景帧的相对颜色对之间的差异,开发了使用空间相关性的四种阈值化方法。在9个室内和室外场景中,成功地在7个场景中检测到对象,而现有的使用灰度图像和常用阈值方法的背景减法技术在1-5个场景中检测到了运动对象。使用开发的技术还可以更好地定义检测对象的形状和边界。

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