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Sound Event Detection by Multitask Learning of Sound Events and Scenes with Soft Scene Labels

机译:通过多任务学习具有软场景标签的声音事件和场景来进行声音事件检测

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Sound event detection (SED) and acoustic scene classification (ASC) are major tasks in environmental sound analysis. Considering that sound events and scenes are closely related to each other, some works have addressed joint analyses of sound events and acoustic scenes based on multitask learning (MTL), in which the knowledge of sound events and scenes can help in estimating them mutually. The conventional MTL-based methods utilize one-hot scene labels to train the relationship between sound events and scenes; thus, the conventional methods cannot model the extent to which sound events and scenes are related. However, in the real environment, common sound events may occur in some acoustic scenes; on the other hand, some sound events occur only in a limited acoustic scene. In this paper, we thus propose a new method for SED based on MTL of SED and ASC using the soft labels of acoustic scenes, which enable us to model the extent to which sound events and scenes are related. Experiments conducted using TUT Sound Events 2016/2017 and TUT Acoustic Scenes 2016 datasets show that the proposed method improves the SED performance by 3.80% in F-score compared with conventional MTL-based SED.
机译:声音事件检测(SED)和声学场景分类(ASC)是环境声音分析中的主要任务。考虑到声音事件和场景之间的关系密切,一些工作基于多任务学习(MTL)解决了声音事件和声音场景的联合分析问题,其中声音事件和场景的知识有助于相互估计它们。传统的基于MTL的方法利用一个热门的场景标签来训练声音事件和场景之间的关系。因此,常规方法不能对声音事件和场景相关的程度建模。但是,在实际环境中,某些声音场景中可能会发生常见的声音事件。另一方面,某些声音事件仅在有限的声学场景中发生。因此,在本文中,我们提出了一种基于SED和ASC的MTL的SED新方法,该方法使用了声音场景的软标签,这使我们能够对声音事件和场景之间的关联程度进行建模。使用TUT Sound Events 2016/2017和TUT Acoustic Sc​​enes 2016数据集进行的实验表明,与传统的基于MTL的SED相比,该方法在F评分中将SED性能提高了3.80%。

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