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A novel approach based on 2D — DWT and variance method for human detection and tracking in video surveillance applications (An alternative approach for object detection)

机译:基于2D-DWT和方差方法的视频监控应用中的人体检测和跟踪的新方法(对象检测的替代方法)

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Moving object detection is very important in modern world for fast video surveillance. There are various methods used for detecting moving objects out of which frame differencing method is widely used and is most efficient method. In this paper we focus on the surveillance at the most secured areas such as airports, defense establishments, power stations etc. Similarly, the area where no human is allowed without authority to enter such as bank locker rooms, restricted military area etc. automotive surveillance and traffic monitoring plays a vital role. In real time surveillance system, storing the captured video and detecting object are two most important issues. Storing such videos needs more memory and the detection of the object is also need to be fast. To solve these problems compression and fast object detection is required. To detect the moving object, detection of its edges and location in the frame are important steps. In this paper we propose a mechanism to use discrete wavelet transform (DWT) for two purposes for compression and edge detection, whereas to locate the object we propose variance method on to the 2-D DWT outputs of video frames. For this analysis HAAR wavelet is used as reference.
机译:在现代世界中,运动对象检测对于快速视频监视非常重要。背景技术存在多种用于检测运动物体的方法,其中帧差分法被广泛使用并且是最有效的方法。在本文中,我们着重于对最安全区域的监视,例如机场,国防设施,发电站等。类似地,不允许未经许可进入人员的区域,例如银行更衣室,禁区,军事区域等。汽车监视交通监控起着至关重要的作用。在实时监控系统中,存储捕获的视频和检测物体是两个最重要的问题。存储此类视频需要更多内存,并且还需要快速检测对象。为了解决这些问题,需要压缩和快速的物体检测。为了检测运动物体,检测其边缘和在框架中的位置是重要的步骤。在本文中,我们提出了一种机制,将离散小波变换(DWT)用于压缩和边缘检测这两个目的,而为了定位对象,我们对视频帧的2-D DWT输出提出了方差方法。对于此分析,将HAAR小波用作参考。

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