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Model-based processing for acoustic scene analysis

机译:基于模型的声学场景分析处理

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The analysis of acoustic scenes requires several functionalities, being perhaps recognition (speech, speaker, other acoustic events) and spatial localization the two most relevant ones. For a reduced invasiveness, the microphones are far away from the sound sources, and possibly grouped in arrays, which may be distributed, not arranged, in the room. Aiming at an increased performance, the usual model-based approach employed for sound recognition or detection can be extended to other co-occurrent tasks like source localization, so both tasks can be carried out jointly, using the same formulation and processing. In this paper, we intend to illustrate that point by presenting together a few new model-based techniques that deal with the problems of overlapped-sounds recognition, multi-source localization, and channel selection. They are briefly described, and tested in a smart-room environment with a multiple microphone-array setup.
机译:声学场景的分析需要几个功能,也许是识别(语音,说话者,其他声学事件)和空间定位这两个最相关的功能。为了减小侵入性,麦克风远离声源,并且可能以阵列的形式分组,这些阵列可以分布在房间中,而不是布置在房间中。为了提高性能,用于声音识别或检测的基于模型的常规方法可以扩展到其他并发任务,例如源定位,因此可以使用相同的公式和处理来共同执行这两个任务。在本文中,我们打算通过提出一些基于模型的新技术来说明这一点,这些新技术可以解决重叠声音识别,多源定位和通道选择的问题。对它们进行了简要描述,并在具有多个麦克风阵列设置的智能房间环境中进行了测试。

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