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Video Image Fire Recognition Based on Color Space and Moving Object Detection

机译:基于颜色空间和移动对象检测的视频图像消防识别

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Flame recognition based on video image is an important method for fire detection. In order to improve the accuracy of flame recognition and the applicability of complex scenes, the flame color model was improved on the basis of RGB and HSI color space models, and the flame color model with adaptive threshold values was proposed for different background spaces, which could be adapted to the extraction of suspected flame areas in different environments. The flame has motion characteristics during combustion. ViBe(Visual Background Extractor) algorithm can quickly identify moving objects, but it cannot detect moving objects quickly when the first frame of the image contains moving objects. In this paper, an improved ViBe algorithm is proposed. Frame difference method is used to build the background model through the difference of the first two frames. The method of combining three frame difference and VIBE algorithm can reduce the influence of noise. The hole in the target graph is solved through image morphology processing. Experiments show that the algorithm can identify the flame region accurately and quickly.
机译:基于视频图像的火焰识别是火灾检测的重要方法。为了提高火焰识别的准确性和复杂场景的适用性,基于RGB和HSI色彩空间模型提高了火焰色彩模型,并提出了具有自适应阈值的火焰颜色模型用于不同的背景空间,可以适应不同环境中的疑似火焰区域的提取。火焰在燃烧过程中具有运动特性。 Vibe(Visual Backgrount Extractor)算法可以快速识别移动对象,但是当图像的第一帧包含移动对象时,它无法快速检测移动对象。在本文中,提出了一种改进的vibe算法。帧差分方法用于通过前两个帧的差异构建背景模型。结合三帧差和Vibe算法的方法可以减少噪声的影响。目标图中的孔通过图像形态处理解决。实验表明,该算法可以准确且快速地识别火焰区域。

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