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A System on a Programmable Chip Architecture for Data-Dependent Superimposed Training Channel Estimation

机译:用于数据相关的叠加训练信道估计的可编程芯片体系结构系统

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摘要

Channel estimation in wireless communication systems is usually accomplished by inserting, along with the information, a series of known symbols, whose analysis is used to define the parameters of the filters that remove the distortion of the data. Nevertheless, a part of the available bandwidth has to be destined to these symbols. Until now, no alternative solution has demonstrated to be fully satisfying for commercial use, but one technique that looks promising is superimposed training (ST). This work describes a hybrid software-hardware FPGA implementation of a recent algorithm that belongs to the ST family, known as Data-dependent Superimposed Training (DDST), which does not need extra bandwidth for its training sequences (TS) as it adds them arithmetically to the data. DDST also adds a third sequence known as data-dependent sequence, that destroys the interference caused by the data over the TS. As DDST's computational burden is too high for the commercial processors used in mobile systems, a System on a Programmable Chip (SOPC) approach is used in order to solve the problem.
机译:无线通信系统中的信道估计通常是通过在信息中插入一系列已知符号来完成的,这些符号的分析用于定义消除数据失真的滤波器参数。但是,部分可用带宽必须指定给这些符号。到目前为止,还没有其他解决方案能够完全满足商业需求,但是一种看起来很有希望的技术是叠加训练(ST)。这项工作描述了属于ST系列的一种最新算法的混合软件-硬件FPGA实现,称为数据相关叠加训练(DDST),该训练序列(TS)不需要额外的带宽,因为它可以算术地添加它们数据。 DDST还添加了第三个序列,称为数据相关序列,它消除了TS上数据引起的干扰。由于DDST的计算负担对于移动系统中使用的商用处理器而言过高,因此使用了可编程芯片上系统(SOPC)方法来解决该问题。

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  • 来源
    《International journal of reconfigurable computing》 |2009年第2期|P.15.1-15.10|共10页
  • 作者单位

    Computer Science Department, National Institute of Astrophysics, Optics and Electronics, CP 72840, Puebla, Mexico;

    rnComputer Science Department, National Institute of Astrophysics, Optics and Electronics, CP 72840, Puebla, Mexico;

    rnComputer Science Department, National Institute of Astrophysics, Optics and Electronics, CP 72840, Puebla, Mexico;

    rnSection of Communications, CINVESTAV-IPN, CP 07360, Mexico City, Mexico;

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