OFCDM无线接入中基于最大SIR准则的精确FFT处理窗时检测

Satoshi Nagata, N. Maeda, H. Atarashi, M. Sawahashi
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引用次数: 2

摘要

针对正交频码分复用(OFCDM)无线接入中不同检测到的FFT窗时,提出了一种基于最大信干扰功率比(SIR)准则,同时考虑接收信号功率和码间干扰的精确快速傅立叶变换(FFT)窗时检测方法。接收信号经过FFT处理后的SIR使用期望的信号功率估计,并使用功率延迟曲线计算码间干扰功率,该功率延迟曲线由导频符号副本与接收信号之间的相互关系测量。此外,由于SIR仅计算第一条路径的接收路径时间和超过保护间隔持续时间的路径,这些路径大于噪声阈值,因此该方法的计算复杂度较低。计算机仿真结果表明,为了实现10/sup -2/的平均包错误率(per),与传统的功率延迟曲线(16QAM数据调制,六径瑞利衰落信道,最大延迟时间为3微秒)的前向路径定时检测方法相比,该方案将每个符号与背景噪声功率谱密度比(E/sub s//N/sub 0/)所需的平均接收信号能量降低了约1.0 dB。RMS延迟扩展为0.86微秒)。
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Accurate FFT processing window timing detection based on maximum SIR criterion in OFCDM wireless access
The paper proposes an accurate fast Fourier transform (FFT) window timing detection method based on the maximum signal-to-interference power ratio (SIR) criterion, taking into account the received signal power and intersymbol interference, according to different detected FFT window timings in orthogonal frequency and code division multiplexing (OFCDM) wireless access. The SIR of the received signal after FFT processing is estimated using the desired signal power and the intersymbol interference power calculated using the power delay profile, which is measured by the cross-correlation between the pilot symbol replica and the received signal. Furthermore, since the SIR is calculated only for the received path timing of the first path and those paths exceeding the guard interval duration, which are greater than the noise-threshold value, the computational complexity of the proposed method is low. Computer simulation results show that the proposed scheme reduces the required average received signal energy per symbol-to-background noise power spectrum density ratio (E/sub s//N/sub 0/) for achieving the average packet error rate (PER) of 10/sup -2/ by approximately 1.0 dB compared to the conventional method which detects the forward path timing of the power delay profile (16QAM data modulation, six-path Rayleigh fading channel, maximum delay time of 3 microsec, RMS delay spread of 0.86 microsec).
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