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Impact of multiple sound types on environmental sound classification

机译:多种声音类型对环境声音分类的影响

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A wireless sensor network equipped with microphones can be used for context awareness by classifying sound events in the target environment. This classification will become less accurate when more than one sound can be heard at the same time. We conduct a series of experiments in which we mix different sound types in order to see how high this influence is. We conclude, that in most cases, the classifier will become unreliable if other sounds with the same loudness are audible within a range of less than five times the distance of the main sound from the microphone.
机译:通过对目标环境中的声音事件进行分类,可以将配备麦克风的无线传感器网络用于上下文感知。当可以同时听到多个声音时,此分类将变得不那么准确。我们进行了一系列实验,在其中混合了不同的声音类型,以了解这种影响的严重程度。我们得出的结论是,在大多数情况下,如果在小于麦克风主声音的距离的五倍的范围内,可以听到其他具有相同响度的声音,分类器将变得不可靠。

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