Comparative analysis of simple rules for flame recognition

E. Buza, E. Turajlić, Amila Akagic
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Abstract

Compared to conventional fire detection techniques, high-precision computer vision-based fire detection systems have a number of desirable characteristics, such as the ability to monitor large areas, provide a bountiful amount of information, and are easy to maintain. This paper extensively and systematically investigates the use of simple color-based rules for pixel-wise flame recognition in still images. The rules are evaluated on a hundred and nineteen test images that correspond to fires in urban environments. The performances of the considered flame recognition rules are reported in terms of Recall, Balanced accuracy, Accuracy, F1 score, and Matthews correlation coefficient. The best-performing rule is identified. More complex classifiers are formed by combining two or more simple rules. The experimental results show that simple color-based rules and some of their combinations can offer effective fire recognition performance.
火焰识别简单规则的对比分析
与传统的火灾探测技术相比,基于计算机视觉的高精度火灾探测系统具有许多理想的特性,例如能够监视大面积,提供大量信息,并且易于维护。本文广泛而系统地研究了在静态图像中使用简单的基于颜色的规则进行逐像素火焰识别。这些规则是在对应于城市环境中的火灾的119个测试图像上进行评估的。在召回率、平衡准确率、准确率、F1分数和马修斯相关系数方面报告了所考虑的火焰识别规则的性能。确定了性能最佳的规则。更复杂的分类器是通过组合两个或多个简单规则形成的。实验结果表明,简单的基于颜色的规则及其组合可以提供有效的火焰识别性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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