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Candidate Smoke Region Segmentation of Fire Video Based on Rough Set Theory

机译:基于粗糙集理论的火警视频候选烟雾区域分割

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摘要

Candidate smoke region segmentation is the key link of smoke video detection; an effective and prompt method of candidate smoke region segmentation plays a significant role in a smoke recognition system. However, the interference of heavy fog and smoke-color moving objects greatly degrades the recognition accuracy. In this paper, a novel method of candidate smoke region segmentation based on rough set theory is presented. First, Kalman filtering is used to update video background in order to exclude the interference of static smoke-color objects, such as blue sky. Second, in RGB color space smoke regions are segmented by defining the upper approximation, lower approximation, and roughness of smoke-color distribution. Finally, in HSV color space small smoke regions are merged by the definition of equivalence relation so as to distinguish smoke images from heavy fog images in terms of V component value variety from center to edge of smoke region. The experimental results on smoke region segmentation demonstrated the effectiveness and usefulness of the proposed scheme.
机译:候选烟雾区域分割是烟雾视频检测的关键环节。一种有效而迅速的候选烟雾区域分割方法在烟雾识别系统中起着重要作用。但是,浓雾和烟色运动物体的干扰大大降低了识别精度。本文提出了一种基于粗糙集理论的候选烟雾区域分割新方法。首先,卡尔曼滤波用于更新视频背景,以排除静态烟色对象(如蓝天)的干扰。其次,在RGB颜色空间中,通过定义烟色分布的上近似值,下近似值和粗糙度来划分烟雾区域。最后,在HSV颜色空间中,通过等价关系的定义合并小的烟雾区域,以便根据烟雾区域中心到边缘的V分量值变化将烟雾图像与重雾图像区分开。烟雾区域分割的实验结果证明了该方案的有效性和实用性。

著录项

  • 来源
    《Journal of electrical and computer engineering》 |2015年第2015期|280415.1-280415.8|共8页
  • 作者

    Yaqin Zhao;

  • 作者单位

    College of Mechanical and Electronic Engineering, Nanjing Forestry University, Nanjing 210037, China;

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  • 原文格式 PDF
  • 正文语种 eng
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