标题: 可应用于多天线系统快速时间同步之研究
The Study of Fast Timing Recovery For MIMO-OFDM Systems
作者: 吕绍弘
Shaohung,Lu
陈颖平
Ying-Ping Chen
资讯科学与工程研究所
关键字: 多天线;时间同步;MIMO-OFDM;Timing Recovery
公开日期: 2007
摘要: 近几年在无线技术发展下,新一代无线通讯系统中,正交分频多工 (Ortho- gonal Frequency Division Multiplexing, OFDM)已经逐渐变成主流核心,在一个多路径衰减的通道中,正交分频多工被证明能有效的对抗由多路径衰减所带来的不理想因素。
本论文主要提出一个可以应用在IEEE所制定的无线区域网路标准IEEE 802.11n 上之时间同步(Timing Synchronization)。其中IEEE 802.11n 所使用的方式即为多输入多输出正交分频多工(Multi-Input-Multi-Output Orthogonal Frequency Division Multiplexing), MIMO-OFDM)。
本论文所提出的同步架构着重在时间同步(Timing synchronization)中。主要在试图解决在多路径衰减的通道中,因为通道效应的影响,在接收端所接收到的信号能量会放大或衰减,而使时间同步产生的取样判断上的错误.。以一个时脉产生22个不同相位的时序而言,提出的方法将会使最后取样的相位与理想的相位差距三个相位内。
DUE to the explosive growth demand for wireless communications, the next-generation wireless communication systems are expected to provide ubiquitous, high-quality, high-speed, reliable, and spectrally-efficient. However, to achieve this objective, several technical challenges have to be overcome attempt to provide high-quality service in this dynamic environment [1].
Orthogonal frequency division multiplexing (OFDM), one of the multi-carrier modulation schemes, turns out to be a strong candidate for the future wideband wireless systems because of its high spectral efficiency and simplicity in equalization. However, OFDM also has its drawbacks. The notable issues of OFDM system are more sensitive to synchronization errors than single carrier system [2], [3]. Most OFDM synchronization methods have one or some of the following limitations or drawbacks: have a limited range of operation, address only one task, have a large estimation variance, lack robust sync detection capability, and require extra overheads [4].
In this work, we introduce a timing synchronization algorithm for 4*4 MIMO-OFDM systems, and try to solve the problem which the signal power will enlarge or decade cause by multi-path channel. This problem will cause sampling phase error. Assume a multiphase generator is used to generate 22 different phases between one clock cycles, the difference between ideal sampling phase and sampling phase determined by this work is 3. Ten L-STS (Legacy Short Training Sequences) are defined in the 802.11n specification, we will perform timing synchronization by used four L-STS in multi-path channel environment and seven L-STS in time variance channel environment. Half L-STS will be used in multi-path channel, and full L-STS will be used in time variance channel.
URI: http://140.113.39.130/cdrfb3/record/nctu/#GT009555571
http://hdl.handle.net/11536/39523
显示于类别:Thesis


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