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Reverberation-based feature extraction for acoustic scene classification

机译:基于混响的特征提取用于声学场景分类

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We present a system for acoustic scene classification, which is the task to classify an environment based on audio recordings. First, we describe a strong low-complexity baseline system using a compact feature set. Second, this system is improved with a novel class of audio features, which exploit the knowledge of sound behaviour within the scene - reverberation. This information is complementary to commonly used features for acoustic scene classification, such as spectral or cepstral components. For extracting the new features, temporal peaks in the audio signal are detected, and the decay after the peak reveals information about the reverberation properties. For the detected decays, statistics are extracted and summarized over time and over frequency bands. The combination of the novel features with features used in state-of-the-art algorithms for acoustic scene classification increases the classification accuracy, as our results obtained with a large in-house database and the DCASE 2016 database demonstrate.
机译:我们提出了一种声学场景分类系统,该系统是根据录音对环境进行分类的任务。首先,我们使用紧凑的功能集描述了一个强大的低复杂度基线系统。其次,该系统使用一类新颖的音频功能进行了改进,该功能利用了场景中声音行为的知识-混响。该信息是对声学场景分类的常用功能(例如频谱或倒频谱分量)的补充。为了提取新特征,要检测音频信号中的时间峰值,峰值之后的衰减会揭示有关混响特性的信息。对于检测到的衰减,将提取统计信息,并随时间和频带进行汇总。正如我们使用大型内部数据库和DCASE 2016数据库获得的结果所示,将新颖的功能与用于声学场景分类的最新算法中使用的功能相结合,可以提高分类的准确性。

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