首页> 外文期刊>Physical Communication >Frequency-domain channel estimation and equalization for shallow-water acoustic communications
【24h】

Frequency-domain channel estimation and equalization for shallow-water acoustic communications

机译:浅水声通信的频域信道估计和均衡

获取原文
获取原文并翻译 | 示例
           

摘要

A new frequency-domain channel estimation and equalization (FDE) scheme, combined with a new group-wise phase correction scheme, is proposed for single-carrier (SC) underwater acoustic communications systems employing single transducer and multiple hydrophones. The proposed SC-FDE scheme employs a 2N-point Fast Fourier Transform (FFT) to estimate and equalize the channel in frequency domain, where N is the number of symbols in a data block. Both the frequency-domain channel estimation and equalization are designed by the linear minimum mean square error criterion. Initial channel estimation is performed by a pilot signal block and later updates are achieved using the detected data blocks. The proposed phase correction scheme utilizes a few pilot symbols in each data block to estimate the initial phase shift and then correct it for the block to combat the large phase rotation due to the instantaneous Doppler drifts in the acoustic channels. Time-varying instantaneous phase drifts are re-estimated and compensated adaptively by averaging the phase variation across a group of symbols. The proposed SC-FDE and phase correction method is applied to the AUVFest'07 experimental data measured off the coast of Panama City, Florida, USA, June 2007. With the Quadrature Phase Shift Keying (QPSK) modulation and a symbol rate of 4 ksps, the proposed scheme achieves an average uncoded bit error rate on the order of 1 × 10~(-4) for fixed-to-fixed channels with the source-receiver range of 5.06 km. For the moving-to-fixed source-receiver channels where the source-receiver range is 1-3 km, the multipath delay spread is 5 ms, the average Doppler shifts are ±20 Hz, and the maximum instantaneous Doppler drifts from the mean is ±4 Hz, the proposed scheme achieves an average uncoded bit error rate on the order of 1 × 10~(-3).
机译:针对采用单换能器和多个水听器的单载波(SC)水下声通信系统,提出了一种新的频域信道估计和均衡(FDE)方案,并结合了一种新的逐组相位校正方案。提出的SC-FDE方案采用2N点快速傅立叶变换(FFT)在频域中估计和均衡信道,其中N是数据块中的符号数。频域信道估计和均衡均由线性最小均方误差准则设计。初始信道估计由导频信号块执行,随后的更新使用检测到的数据块实现。所提出的相位校正方案利用每个数据块中的几个导频符号来估计初始相移,然后针对该块对其进行校正以抵抗由于声信道中的瞬时多普勒频移而引起的大相位旋转。通过平均一组符号上的相位变化,可以对时变瞬时相位漂移进行重新估计和自适应补偿。拟议的SC-FDE和相位校正方法应用于2007年6月在美国佛罗里达州巴拿马城附近测得的AUVFest'07实验数据。正交相移键控(QPSK)调制,符号率为4 ksps对于源到接收器范围为5.06 km的固定到固定信道,该方案实现了平均未编码误码率,约为1×10〜(-4)。对于源到接收器范围为1-3 km,固定到源到接收器的信道,多径延迟扩展为5 ms,平均多普勒频移为±20 Hz,最大瞬时多普勒频偏为平均值在±4 Hz的范围内,该方案可实现平均未编码误码率,约为1×10〜(-3)。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号