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Wake-Up-Word Detection for Robots Using Spatial Eigenspace Consistency and Resonant Curve Similarity

机译:使用空间EIGenspace一致性和共振曲线相似性机器人的唤醒词检测

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In this paper, we propose a method to detect the wake-up-word (WUW) using microphone array for human-robot interaction. The consistency of the spatial eigenspaces formed by the speech source at different frequencies and the resonant curve similarity of the WUW are used as the features for detection. These features are processed and detected separately and the result is determined by cascading individual outcome using Bayes risk detector. This proposed method can keep a high recognition rate under very low signal-to-noise ratio (SNR) conditions. In addition, this method can estimate the direction of arrivals of the sound source, and the proposed architecture is easy to expand by adding detectors with other features in the cascaded manner to further improve the recognition rate.
机译:在本文中,我们建议使用麦克风阵列来检测唤醒词(WUW)以进行人机机器人交互。通过不同频率的语音源形成的空间成分的一致性和WUW的谐振曲线相似性用作检测的特征。单独处理和检测这些特征,结果是通过使用贝叶斯风险探测器级联各个结果来确定的。该提出的方法可以在非常低的信噪比(SNR)条件下保持高识别率。另外,该方法可以估计声源的到达的方向,并且通过以级联方式添加探测器来易于扩展所提出的架构,以进一步提高识别率。

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