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Alarming events detection based on audio signals recognition

机译:基于音频信号识别的警报事件检测

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Many zones, especially wild areas need surveillance systems in order to protect them against potential destroying actions. An attractive solution for automatic surveillance systems consists in audio based systems, which present some advantages compared with video or mixt surveillance systems. This paper proposes an alarming events detection system with two detection levels. On the first level the system detects only if the event is a dangerous one (alarm on) or a normal one (alarm off). On the second level, if it is the case, the system identifies exactly the nature of events in four classes: chainsaw, gunshot, human voice or tractors. The system uses a set of features of the audio signals associated with the events, as input data for two artificial neural networks that act as pattern recognition components. The experimental results prove that our system is a very reliable one, presenting the maximum possible correct recognition rate (100%) on the first level and very high correct recognition rates on the second level: 99.50% across all data set (training, validation and testing) and 95.0% in the independent testing data subset.
机译:许多地区,特别是荒野地区都需要监视系统,以保护其免受潜在的破坏行动的影响。自动监视系统的一种有吸引力的解决方案是基于音频的系统,与视频或混合监视系统相比,它具有一些优势。本文提出了一种具有两个检测级别的警报事件检测系统。在第一级,系统仅在事件为危险事件(警报打开)或正常事件(警报关闭)时检测。在第二个级别上,如果是这种情况,系统将以四个类别准确地识别事件的性质:链锯,枪声,人声或拖拉机。该系统使用与事件关联的音频信号的一组功能,作为两个用作模式识别组件的人工神经网络的输入数据。实验结果证明,我们的系统是非常可靠的系统,在第一级上显示最大可能的正确识别率(100%),在第二级上显示非常高的正确识别率:在所有数据集(训练,验证和验证)中达到99.50%测试)和95.0%的独立测试数据子集。

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