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Time-frequency analysis for audio event detection in real scenarios

机译:实际情况中音频事件检测的时频分析

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We propose a sound analysis system for the detection of audio events in surveillance applications. The method that we propose combines short- and long-time analysis in order to increase the reliability of the detection. The basic idea is that a sound is composed of small, atomic audio units and some of them are distinctive of a particular class of sounds. Similarly to the words in a text, we count the occurrence of audio units for the construction of a feature vector that describes a given time interval. A classifier is then used to learn which audio units are distinctive for the different classes of sound. We compare the performance of different sets of short-time features by carrying out experiments on the MIVIA audio event data set. We study the performance and the stability of the proposed system when it is employed in live scenarios, so as to characterize its expected behavior when used in real applications.
机译:我们提出了一种用于检测监控应用中的音频事件的声音分析系统。我们提出的方法结合了短期和长时间分析,以提高检测的可靠性。基本思想是声音由小的原子音频单元组成,其中一些是特定类的声音。与文本中的单词类似,我们计算用于构造描述给定时间间隔的特征向量的音频单元的发生。然后,使用分类器来了解哪些音频为不同类别的声音。我们通过在Mivia音频事件数据集上进行实验来比较不同组特征的性能。我们在实况方案中使用时研究了所提出的系统的性能和稳定性,以便在实际应用中使用时表征其预期行为。

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