Audio phrases for audio event recognition

Huy Phan, L. Hertel, M. Maass, Radoslaw Mazur, A. Mertins
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引用次数: 9

Abstract

The bag-of-audio-words approach has been widely used for audio event recognition. In these models, a local feature of an audio signal is matched to a code word according to a learned codebook. The signal is then represented by frequencies of the matched code words on the whole signal. We present in this paper an improved model based on the idea of audio phrases which are sequences of multiple audio words. By using audio phrases, we are able to capture the relationship between the isolated audio words and produce more semantic descriptors. Furthermore, we also propose an efficient approach to learn a compact codebook in a discriminative manner to deal with high-dimensionality of bag-of-audio-phrases representations. Experiments on the Freiburg-106 dataset show that the recognition performance with our proposed bag-of-audio-phrases descriptor outperforms not only the baselines but also the state-of-the-art results on the dataset.
用于音频事件识别的音频短语
音频词袋方法在音频事件识别中得到了广泛的应用。在这些模型中,根据学习到的码本,将音频信号的局部特征与码字匹配。然后用整个信号上匹配码字的频率来表示信号。本文提出了一种基于音频短语的改进模型,音频短语是由多个音频单词组成的序列。通过使用音频短语,我们能够捕获孤立的音频单词之间的关系,并产生更多的语义描述符。此外,我们还提出了一种以判别方式学习紧凑码本的有效方法,以处理音频短语袋的高维表示。在Freiburg-106数据集上的实验表明,我们提出的音频短语袋描述符的识别性能不仅优于基线,而且优于数据集上的最新结果。
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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