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A novel approach on object detection and tracking using adaptive background subtraction method

机译:基于自适应背景减法的目标检测与跟踪新方法

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Image processing is an ever increasing research scope area where real time surveillance systems will increases the opportunity to the researchers for developing new modules for all the problems. Particularly in complex video processing operations security, intelligence processing is much needed in the society to satisfy the individuals. Basic object detection and tracking has different techniques and many automated systems are available now days to analyze the particular portion or object from the video. Estimation of moving object from the video sequence provides robustness for same colors for object and the background. In view of reducing the robustness and improving the performance of object detecting and tracking system the proposed model used Markov model based background subtraction. It uses neighborhood method to improve the background performance and Markov random field is used to estimate the energy function to optimize the real time experimental results. Generating saliency map combines the texture and cues to explore the linearly generated objects and tracked using component labeling.
机译:图像处理是一个不断扩大的研究领域,实时监控系统将为研究人员增加开发针对所有问题的新模块的机会。特别是在复杂的视频处理操作安全性方面,社会上非常需要智能处理来满足个人需求。基本的对象检测和跟踪具有不同的技术,并且如今有许多自动化系统可用于分析视频中的特定部分或对象。从视频序列估计运动对象可为对象和背景的相同颜色提供鲁棒性。为了降低鲁棒性并提高目标检测和跟踪系统的性能,该模型使用了基于马尔可夫模型的背景减法。它使用邻域方法来改善背景性能,并使用马尔可夫随机场估计能量函数来优化实时实验结果。生成显着性贴图结合了纹理和提示,以探索线性生成的对象并使用组件标签进行跟踪。

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