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A behavior-based flame detection method for a real-time video surveillance system

机译:基于行为的实时视频监控系统火焰检测方法

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摘要

Some characteristics of flames, including vague shapes and fire-like colors, are irregular, so it is difficult to use a video camera for real-time flame detection. To achieve fully automatic surveillance of fires, a real-time incipient flame detection approach that uses three stages of video processing is proposed in this study. Firstly, a thumbnail method is applied to the flame image for the various resolutions for real-time processing. A median filter and a Gaussian filter are used to remove the image noise. The flame edge information in the image is then enhanced, using a sharpening filter. Secondly, quasi-periodic behavior in flame boundaries is detected using motion detection and a background edge model, so some candidates for real flames can be selected. Thirdly, an evaluation method that uses four criteria, including compactness, fill rate, corner flicker rate and growth rate is used to identify the correct flame. The results are verified using videos of complex scenes at different resolutions. A comparison with other systems is made, to demonstrate that the proposed method is more accurate.
机译:火焰的某些特征(包括模糊的形状和类似火的颜色)是不规则的,因此很难使用摄像机进行实时火焰检测。为了实现对火灾的全自动监视,本研究提出了一种使用视频处理的三个阶段的实时早期火焰检测方法。首先,将缩略图方法应用于各种分辨率的火焰图像以进行实时处理。使用中值滤波器和高斯滤波器来去除图像噪声。然后使用锐化滤镜增强图像中的火焰边缘信息。其次,使用运动检测和背景边缘模型检测火焰边界中的准周期性行为,因此可以选择一些真实火焰的候选对象。第三,评估方法使用包括密实度,填充率,拐角闪烁率和生长率在内的四个标准来识别正确的火焰。使用具有不同分辨率的复杂场景的视频来验证结果。与其他系统进行了比较,以证明该方法更准确。

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