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A Low-Complexity Speaker-and-Word Recognition Application for Resource-Constrained Devices

机译:资源受限设备的低复杂度说话者和单词识别应用程序

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We present a low-complexity solution for performing speaker-and-word recognition and demonstrate its suitability for resource-constrained embedded / mobile devices. In the proposed approach, modeling and recognition of speakers and words are performed using Gaussian Mixture Model (GMM), which has relatively low computational complexity. The inability of GMM to capture the temporal information of speech, which is vital for word recognition, has been overcome through a simple, yet effective adaptation. After evaluating the performance of two alternative architectures, an integrated speaker-and-word recognition system based on text-dependent speaker recognition has been proposed. The system has been ported to a mobile device as an Android application and tested in real-life environment.
机译:我们提出了一种执行说话人和单词识别的低复杂度解决方案,并证明了其适用于资源受限的嵌入式/移动设备。在提出的方法中,说话人和单词的建模和识别是使用高斯混合模型(GMM)进行的,该模型具有较低的计算复杂度。通过简单而有效的适应,克服了GMM无法捕获语音的时间信息(这对于单词识别至关重要)的问题。在评估了两种替代架构的性能之后,提出了一种基于文本相关的说话人识别的集成说话人和单词识别系统。该系统已作为Android应用程序移植到移动设备上,并在实际环境中进行了测试。

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