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Power Efficient Implementation of MVA-SI on Speech Controlled IoT Systems

机译:语音控制IOT系统上MVA-SI的功率有效实现

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Speech processing is implemented based on application specific accuracy requirements and regardless of the implementation scheme the ultimate goal remains the same, to enhance speech processing engines up to an extent where natural language can be interpreted accurately in case of word or phoneme recognition and context prediction. ASR training and adaption is always application specific and in the considered application the ASR engine is trained for a power efficient IoT application. The nodes communicate via 802.15.4 6LoWPAN which makes wireless sound transmission very lightweight and power efficient. MVA-SI is a customized version of i-vector speaker identification algorithm which identifies the speaker with system wake up call. In this paper, the logic and implementation of MVA-SI are discussed in detail along with elaboration of prototype system architecture.
机译:基于应用特定的精度要求实现语音处理,并且无论实现方案都保持相同的方式,以增强语音处理引擎,最多可准确地解释自然语言,以便在单词或音素识别和上下文预测中被准确地解释。 ASR培训和适应始终是特定于应用的应用程序,并且在COMPED应用程序中,ASR引擎培训用于功率高效的IOT应用。节点通过802.15.4 6LowPan进行通信,这使得无线声速传输非常轻便和功率效率。 MVA-SI是I-Vector扬声器识别算法的自定义版本,其标识了系统唤醒呼叫的扬声器。在本文中,详细讨论了MVA-Si的逻辑和实现,并讨论了原型系统架构。

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