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Audio Tag Annotation and Retrieval Using Tag Count Information

机译:使用标签计数信息进行音频标签注释和检索

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Audio tags correspond to keywords that people use to describe different aspects of a music clip, such as the genre, mood, and instrumentation. With the explosive growth of digital music available on the Web, automatic audio tagging, which can be used to annotate unknown music or retrieve desirable music, is becoming increasingly important. This can be achieved by training a binary classifier for each tag based on the labeled music data. However, since social tags are usually assigned by people with different levels of musical knowledge, they inevitably contain noisy information. To address the noisy label problem, we propose a novel method that exploits the tag count information. By treating the tag counts as costs, we model the audio tagging problem as a cost-sensitive classification problem. The results of audio tag annotation and retrieval experiments show that the proposed approach outperforms our previous method, which won the MIREX 2009 audio tagging competition.
机译:音频标签与人们用来描述音乐剪辑的不同方面(例如流派,情绪和乐器)的关键字相对应。随着网络上数字音乐的爆炸性增长,可用于注释未知音乐或检索所需音乐的自动音频标记变得越来越重要。这可以通过基于标记的音乐数据为每个标签训练一个二进制分类器来实现。但是,由于社交标签通常是由具有不同音乐知识水平的人分配的,因此它们不可避免地包含嘈杂的信息。为了解决嘈杂的标签问题,我们提出了一种利用标签计数信息的新颖方法。通过将标签计数视为成本,我们将音频标签问题建模为对成本敏感的分类问题。音频标签注释和检索实验的结果表明,该方法优于我们以前的方法,该方法赢得了MIREX 2009音频标签竞赛。

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