首页> 外文期刊>Oriental Journal of Computer Science and Technology >Speeding Up Eedge Segment Based Moving Object Detection Using Background Subtraction in Video Surveillance System
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Speeding Up Eedge Segment Based Moving Object Detection Using Background Subtraction in Video Surveillance System

机译:视频监控系统中通过背景减法加速基于边缘段的运动目标检测

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摘要

Automatic real time video monitoring and object detection is indeed a challenge since there are many criteria that should be taken In mind in designing and implementing algorithms for this sake. The criteria that should be considered for example are processing speed, scene illumination variation and dynamic outdoor environment. In this study we propose a fast, flexible and immune against illumination variation approach for moving object detection based on the combination of edge segment based background modeling and background subtraction techniques. The first technique is used for building robust and flexible statistical background model, while the other technique is used for the prime detection of moving object to be compared later with the flexible background. Thus this combination leads to computational reduction due to the second technique, and then flexible matching and precise detection due to the first technique.
机译:自动实时视频监视和对象检测确实是一个挑战,因为为此目的在设计和实现算法时应考虑许多标准。例如,应该考虑的标准是处理速度,场景照明变化和动态室外环境。在这项研究中,我们提出了一种快速,灵活且不受光照变化影响的运动物体检测方法,该方法基于基于边缘段的背景建模和背景减法技术的结合。第一种技术用于建立鲁棒且灵活的统计背景模型,而另一种技术用于对运动对象进行质素检测,稍后再与柔性背景进行比较。因此,由于第二种技术,这种组合导致计算量减少,而由于第一种技术,则导致灵活的匹配和精确的检测。

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