A multibanded system architecture for ultra-wideband communications

J. R. Foerster, V. Somayazulu, Subhasish Subhasish
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引用次数: 12

Abstract

The FCC ruling in 2002 allowing for the unlicensed deployment of ultra-wideband (UWB) devices for communications purposes in the 3.1-10.6 GHz band has sparked great interest in the industry. In particular, the IEEE 802.15.3a task group is currently developing a standard for high-rate, short-range wireless communication systems that is expected to use UWB technology. One of the main challenges for UWB system design is minimizing the possible interference to other narrowband systems, while, at the same time, dealing with the large interference that may be coming from these narrowband systems into the UWB receiver. Traditional UWB systems have used very short time impulses that occupy several giga-hertz of bandwidth. This approach makes it difficult to efficiently avoid other system that may be sharing the same band. This paper will describe a channel model that has been adopted by the industry to evaluate the merits of different UWB physical layer approaches and introduce an alternate approach to a high-rate UWB system that is based upon the concatenation of multiple narrower band UWB waveforms.
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一种用于超宽带通信的多频带系统架构
2002年,美国联邦通信委员会(FCC)裁定允许在3.1-10.6 GHz频段内未经许可部署用于通信目的的超宽带(UWB)设备,这引发了业界的极大兴趣。特别是,IEEE 802.15.3a任务组目前正在开发一种高速率、短距离无线通信系统的标准,预计将使用超宽带技术。UWB系统设计的主要挑战之一是尽量减少对其他窄带系统的干扰,同时处理可能来自这些窄带系统到UWB接收器的大干扰。传统的超宽带系统使用非常短的时间脉冲,占用几千兆赫的带宽。这种方法使得很难有效地避开可能共享同一频段的其他系统。本文将描述一个信道模型,该模型已被业界采用,用于评估不同UWB物理层方法的优点,并介绍一种基于多个较窄频带UWB波形的连接的高速率UWB系统的替代方法。
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