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On Enhancing Acoustic Event Detection by Using Feature Selection and Audiovisual Feature-Level Fusion

机译:通过使用特征选择和视听特征级融合来增强声学事件检测

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The detection of the acoustic events (AEs) that are naturally produced in a meeting room may help to describe the human and social activity that takes place in it. Even if the number of considered events is not large, that detection becomes a difficult task in scenarios where the AEs are produced rather spontaneously and they often overlap in time. In this work, we aim to improve the detection of AEs by two different ways: first, we select the most discriminative spectro-temporal audio features by using a hill-climbing wrapper method; second, we add new features coming from video signals as well as from an acoustic source localization system. A new metric is also proposed to conduct feature selection. Besides confirming the interest of using video and source localization information, the results obtained from audiovisual data collected in our multimodal room show that an improved accuracy can be obtained using an acoustic detection system based on a selected subset of features instead of the whole set of features.
机译:在会议室内自然产生的声学事件(AES)的检测可能有助于描述在其中发生的人类和社会活动。即使考虑的事件的数量不大,该检测也成为一个艰难的任务,即在AES相当自发地产生AES,并且它们通常在时间上重叠。在这项工作中,我们的目标是通过两种不同的方式改善AES的检测:首先,我们通过使用山坡包装方法选择最辨别的光谱 - 时间音频特征;其次,我们添加来自视频信号以及声学源定位系统的新功能。还提出了一种新的度量来进行特征选择。除了确认使用视频和源本地化信息的兴趣之外,从我们的多模式室中收集的视听数据获得的结果表明,可以使用基于所选择的特征子集而不是整组特征的声检测系统来获得改进的精度。

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