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首页> 外文期刊>Journal of computer networks and communications >Embedded Parallelism Enabling Ultralow-Power Zigbee Voice Communications
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Embedded Parallelism Enabling Ultralow-Power Zigbee Voice Communications

机译:嵌入式并行性启用UltraLow-Power ZigBee语音通信

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Short-range wireless technologies are known to transmit voice, audio, image, and video messages in real time. Energy consumption and transmission reach are critical in such networks, especially for portable and power autonomous devices. The purpose of the Voice over Zigbee technology is to provide a competitive offering that excels in these performance aspects. Due to the CSMA-CA mechanism implemented in the 802.15.4 layer, a well-designed strategy must be considered in Zigbee to create a robust, reliable, and full-duplex conversation. In past efforts, we proved that the radio channel of Zigbee has enough bandwidth to support a full-duplex conversation with narrow-band voice codecs. Our embedded implementation of the Speex voice codec targeted the development of a low-cost, ultralow-power, long-range wireless headset using Zigbee technology to transmit voice in full-duplex mode for use with leading PC VoIP programs. Furthermore, we presented the real environment performance evaluation and power consumption tests involving the developed headset prototype. Talk time is comparable to Bluetooth including at the power budget, the codec processing, and analogue audio interface, but its deep-sleep lifetime more than doubles the Bluetooth performance. This was one of the very few successful efforts to port a voice codec on an ultralow-power DSP for use with power sensitive Zigbee applications, which is highly cited in the literature, proving additionally that using an open-source codec can deliver similar voice quality, reducing the total system cost. The current paper elaborates on the embedded parallelism of the Speex implementation and the exploitation of the DSP architectural parallelism which critically enabled the Voice over Zigbee application on the ultralow-power DSP platform. Another significant contribution of this work is towards understanding and resolving the challenges faced when trying to achieve good quality transmission of media over constrained devices and networks. The way to new ultralow-power voice-related Zigbee and constrained network applications is open.
机译:已知短距离无线技术实时传输语音,音频,图像和视频消息。能量消耗和传输达到在这种网络中是至关重要的,特别是对于便携式和动力自主设备。 ZigBee技术的声音的目的是提供在这些性能方面擅长的竞争产品。由于在802.15.4层中实现的CSMA-CA机制,在ZigBee中必须考虑精心设计的策略,以创建强大,可靠和全双工对话。在过去的努力中,我们证明ZigBee的无线电频道具有足够的带宽来支持与窄带语音编解码器的全双工对话。我们的嵌入式实施Speex语音编解码器使用ZigBee技术的低成本,超级电源,远程无线耳机的开发,以传输全双工模式的语音,以便与领先的PC VoIP程序一起使用。此外,我们介绍了涉及发达的耳机原型的真实环境绩效评估和功耗测试。谈话时间与蓝牙相当,包括在电源预算,编解码器处理和模拟音频接口,但其深度睡眠寿命多倍多,倍增蓝牙性能。这是在UltraLow-Power DSP上移植语音编解码器的少数成功努力之一,以便在文献中具有高度引用的功率敏感的ZigBee应用程序,该应用程序另外证明使用开源编解码器可以提供类似的语音质量,降低总系统成本。目前纸张详细阐述了Speex实现的嵌入式并行性,并开发了DSP架构并行性,这批判性地在UltraLow-Power DSP平台上通过ZigBee应用程序的语音。这项工作的另一个重要贡献是在努力实现媒体的良好质量传播时,对媒体的理解和解决挑战,在受约束的装置和网络上实现良好的挑战。新的超级电源语音相关ZigBee和约束网络应用的方式是打开的。

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