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Modeling and Formalization of Fuzzy Finite Automata for Detection of Irregular Fire Flames

机译:模糊有限自动机的不规则火焰识别与建模

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摘要

Fire-flame detection using a video camera is difficult because a flame has irregular characteristics, i.e., vague shapes and color patterns. Therefore, in this paper, we propose a novel fire-flame detection method using fuzzy finite automata (FFA) with probability density functions based on visual features, thereby providing a systemic approach to handling irregularity in computational systems and the ability to handle continuous spaces by combining the capabilities of automata with fuzzy logic. First, moving regions are detected via background subtraction, and the candidate flame regions are then identified by applying flame color models. In general, flame regions have a continuous irregular pattern; therefore, probability density functions are generated for the variation in intensity, wavelet energy, and motion orientation and applied to the FFA. The proposed algorithm is successfully applied to various fireon-fire videos, and its detection performance is better than that of other methods.
机译:由于火焰具有不规则的特征,即模糊的形状和颜色图案,因此使用摄像机检测火焰很难。因此,在本文中,我们提出了一种新的使用基于视觉特征的具有概率密度函数的模糊有限自动机(FFA)进行火焰检测的方法,从而提供了一种系统的方法来处理计算系统中的不规则性以及通过处理连续空间的能力将自动机的功能与模糊逻辑相结合。首先,通过背景减法检测运动区域,然后通过应用火焰颜色模型识别候选火焰区域。通常,火焰区域具有连续的不规则图案。因此,针对强度,小波能量和运动方向的变化生成概率密度函数,并将其应用于FFA。该算法成功应用于各种火灾/非火灾视频,其检测性能优于其他方法。

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