首页> 外文会议>IEEE International Symposium on Personal, Indoor and Mobile Radio Communications >Two Way Transmitter-Receiver Array Adaptation for Multi-Carrier Code Division Multiplexed Modulation with Array-Carrier MLE Reception -A Path Modeled Design-
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Two Way Transmitter-Receiver Array Adaptation for Multi-Carrier Code Division Multiplexed Modulation with Array-Carrier MLE Reception -A Path Modeled Design-

机译:两种方式发射机 - 接收器阵列适用于多载码分割多路复用调制与阵列 - 载波MLE接收-A路径建模设计 -

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We propose in this paper a two-way wireless OFDM multi-carrier code-division multiplexed modulation with optimum transmitter-receiver broadband far-field antenna array adaptation to the propagation path characteristics. The frequency band is shared between the two directions with TDD and we assume the same array antenna is used at each station for transmission and reception. Employing a path model in the analysis, and assuming error-free measurement of the transmittances from the center of the transmitter station to the array elements of the receiver station, it is shown that the array-carrier MLE (Maximum Likelihood Estimate) reception of the code-division multiplexed symbols discriminates the paths with delay time difference greater than the inverse of the signal bandwidth or with sufficiently different directions of arrival. And as a result bandwidth-constrained path-wise matched reception is realized. It was confirmed by simulation assuming Rayleigh ( not Rice ) path model that the system gives substantially higher BER versus SNR per bit performance than that of the carrier-only MLE reception employing an omni-directional antenna or an array antenna only for the purpose of directivity. Because of the optimality of the reception the transmitter array adaptation has nothing to do but optimally to deliver transmitted power to the paths so as the total expected arriving power at the receiving station be maximum. Owing to the reciprocity of propagation by using the same antenna array for reception and transmission, the transmitter array adaptation makes use of the measurement, at the receiver, of the transmittance to derive the optimum transmitter array weightings. The algorithm at each station, achieves two way optimization without interchanging any data to be obtained by the channel measurement in the pilot periods.
机译:我们提出了一种双向无线OFDM多载波码分频复用调制,其具有最佳的发射器 - 接收器宽带远场天线阵列适应传播路径特性。频带在具有TDD的两个方向之间共享,并且我们假设在每个站中使用相同的阵列天线以进行传输和接收。在分析中采用路径模型,并假设从发射机站的中心到接收器站的阵列元件的透射率的无差错测量,所示的阵列 - 载波MLE(最大似然估计)接收码分多路复用符号判断具有大于信号带宽的倒数或具有足够不同的到达方向的延迟时间差的路径。并且,作为结果,实现了带宽约束路径匹配的接收。通过模拟确认假设瑞利(不是大米)路径模型,该路径模型,该系统给出了每个比特性能的基本上更高的BER与SNR,而不是仅采用全向天线或阵列天线的乘员的MLE接收,仅用于方向性的目的。由于接收的最优性,发射器阵列适配无所事事,而是最佳地为路径提供传输功率,以便在接收站处的总预期到达功率最大。由于使用相同的天线阵列来接收和传输的传播,发射机阵列适配在接收器处使用测量,透射率导出最佳发射机阵列权重。在每个站的算法,实现了两种方式优化,而不会在导频时段中的信道测量中互换任何数据。

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