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Robust Environmental Sound Recognition for Home Automation

机译:用于家庭自动化的强大的环境声音识别

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This work presents a robust environmental sound recognition system for home automation. Specific home automation services can be activated based on identified sound classes. Additionally, when the sound category is human speech, such speech can be recognized for detecting human intentions as in conventional research on home automation. To attain this ambitious goal, this study uses two key techniques: signal-to-noise ratio-aware subspace-based signal enhancement and sound recognition with independent component analysis mel-frequency cepstral coefficients and a frame-based multiclass support vector machines, respectively. Simulations and an experiment in a real-world environment are given to illustrate the performance of the proposed robust sound recognition system.
机译:这项工作提出了一个强大的环境声音识别系统,用于家庭自动化。特定的家庭自动化服务可以基于识别的声音类别被激活。另外,当声音类别是人类语音时,可以像在家庭自动化的常规研究中那样识别这种语音以检测人类意图。为了实现这一宏伟目标,本研究使用了两种关键技术:分别基于信噪比的基于子空间的信号增强和具有独立分量分析梅尔频率倒谱系数的声音识别以及基于帧的多类支持向量机。给出了在真实环境中的仿真和实验,以说明所提出的鲁棒声音识别系统的性能。

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