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A Multidomain Approach for Automatic Home Environmental Sound Classification

机译:一种自动家庭环境声音分类的多域方法

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This article presents a multidomain approach which addresses the problem of automatic home environmental sound recognition. The proposed system will be part of a human activity monitoring system which will be based on heterogeneous sensors. This work concerns the audio classification component and its primary role is to detect anomalous sound events. We compare the discriminative capabilities of three feature sets (MFCC, MPEG-7 low level descriptors and a novel set based on wavelet packets) with respect to the classification of ten sound classes. These are combined with state of the art generative techniques (GMM and HMM) for estimating the density function of each class. The highest average recognition rate is 95.7% and is achieved by the vector formed by all the feature sets juxtaposed.
机译:本文提出了一种多领域的方法来解决自动家庭环境声音识别的问题。拟议的系统将成为人类活动监测系统的一部分,该系统将基于异构传感器。这项工作涉及音频分类组件,其主要作用是检测异常声音事件。关于十种声音类别的分类,我们比较了三个特征集(MFCC,MPEG-7低级描述符和一个基于小波包的新颖集)的判别能力。这些与最先进的生成技术(GMM和HMM)相结合,用于估计每个类别的密度函数。最高的平均识别率是95.7%,这是由所有并列的特征集形成的向量实现的。

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