通用音频分类参考平台的开发

R. Jarina, M. Paralic, M. Kuba, J. Olajec, Andrej Lukác, Miroslav Dzurek
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引用次数: 9

摘要

关键声音的检测,如掌声、笑声、音乐、环境噪声等,是多媒体信息智能管理和内容理解的挑战之一。在本文中,我们报告了一种基于参考内容的音频分类算法的发展进展,该算法基于一种传统的、被广泛接受的方法,即通过MFCC进行信号参数化,然后进行GMM分类。我们开发的标记音频数据库和传统的分类模型可以作为评估音频内容分析中新颖、替代或更先进方法的参考平台。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Development of a Reference Platform for Generic Audio Classification
Detection of key sounds, such as applause, laugh, music, environmental noise, etc., is one of the challenges in intelligent management of multimedia information and content understanding. In this paper, we report progress in development of a reference content-based audio classification algorithm that is based on a conventional and widely accepted approach, namely signal parameterization by MFCC followed by GMM classification. Our developed labeled audio database and the conventional classification model should serve as a reference platform for an evaluation of novel, alternative or more advanced methods in audio content analysis.
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