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Detection of fire using image processing techniques with LUV color space

机译:使用LUV颜色空间使用图像处理技术检测火灾

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Vision based fire detection system have recently gained popularity as compared to traditional fire detection system based on sensors. The popularity and need of video surveillance at residential, Industrial, public and business locations have supported the widespread use of vision based fire detection system. The colour of fire is the basic technique for identification of fire in an image. However, the colour of fire varies from red, orange, yellow to white. Also, there are non-fire objects with fire-like colour. In order to improve the accuracy of fire detection system, colour detection is combined with various other techniques. Edge detection, motion detection, area covered by flames, existence of smoke, growth of fire and background segmentation are some techniques which are combined by various researchers and used to correctly classify the fire images and fire-like non fire images in a video. There are also various thresholds that are used to differentiate fire in any frame. These thresholds need to be adjusted based on the type of area and its brightness level. Also, the difference in the subsequent frames and area covered by the flames supports the existence of fire if it is greater than the threshold. This paper presents the comparative analysis of five recent vision based fire detection system. These fire detection systems are based on flame colour detection combined with other features such as motion and area of frame. The fire detection system based on LUV colour space and hybrid transforms is proposed.
机译:与基于传感器的传统火灾检测系统相比,基于视觉的火灾探测系统最近获得了普及。住宅,工业,公共和商业地点视频监控的人气和需求支持了基于视觉的火灾探测系统的广泛使用。火的颜色是在图像中识别火灾的基本技术。然而,火的颜色从红色,橙色,黄色到白色变化。此外,有非火对象,具有诸如诸如燃烧的颜色。为了提高火灾检测系统的准确性,颜色检测与各种其他技术相结合。边缘检测,运动检测,火焰覆盖的区域,烟雾存在,火灾和背景分割的生长是由各种研究人员组合的一些技术,并用于在视频中正确地分类火灾图像和火焰状非火图像。还有各种阈值用于区分任何帧的火灾。需要根据区域的类型和亮度水平来调整这些阈值。而且,如果火焰覆盖的后续框架和面积的差异则支持火灾的存在,如果它大于阈值。本文介绍了五个基于视觉的火灾探测系统的比较分析。这些火灾检测系统基于火焰颜色检测与其他特征相结合,例如帧的运动和面积。提出了基于LUV颜色空间和混合变换的火灾检测系统。

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