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Semantic Analysis of Precise Detection Rate in Multi-Object Mobility on Natural Scene Using Kalman Filter

机译:基于卡尔曼滤波的自然场景多目标移动精确检测率语义分析

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Detection counting as well as gathering features to perform analysis of behavior of natural scene is one of the complex processes to be design. The current work focuses not only to detect and count the multiple moving objects but also to understand the crowd behavior as well as exponentially reduce the issues of inter-object occlusion. The image frame sequence is considered as input for the proposed framework. Unscented Kalman filter is used for understanding the behavior of the scene as well as for increasing the detection accuracy and reducing the false positives. Designed on Matlab environment, the result shows highly accurate detection rate.
机译:检测计数以及收集特征以执行自然场景的行为分析是要设计的复杂过程之一。当前的工作不仅着重于检测和计数多个运动物体,而且还了解人群行为并以指数方式减少物体间遮挡的问题。图像帧序列被认为是所提出框架的输入。 Unscented Kalman滤波器用于了解场景的行为以及提高检测精度和减少误报。在Matlab环境下设计,结果显示出很高的检测率。

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