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Optimization of the stop-and-go- and dual-mode-algorithms for real-time baseband transmission

机译:实时基带传输的停停走走和双模式算法的优化

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This paper presents two optimized blind equalization algorithms, developed on a real-time digital signal processor (DSP) test bed. The most commonly used group of blind channel equalizers are those based on the Bussgang algorithm. By combining a joint algorithm (JA) with a dual-mode (DM) algorithm or a stop-and-go (SAG) algorithm exists the option for optimal matching to the channel behavior. The performance of a single algorithm like modified decision directed modulus (MDDMA), modified constant modulus (MCMA) or the modified decision directed (MDDA) algorithm can only be adapted by adjusting the step size for updating the equalizer tap vector or by changing the number of equalizer taps. Using SAG or DM algorithm introduces a flag (SAG) or a confidence zone (DM) to optimize the algorithm performance further. Combining the joint algorithm within the SAG or DM algorithm yields an optimized algorithm which offers the advantage of the different algorithms. The new algorithms lead to a decrease of the required transmit power by about 22 percent while achieving the same BER. Additional to this, a 6 percent reduction of the processing time is possible relative to MDDMA due to the possibility to reduce the equalizer length.
机译:本文介绍了两种在实时数字信号处理器(DSP)测试床上开发的优化盲均衡算法。最常用的盲信道均衡器组是基于Bussgang算法的均衡器。通过将联合算法(JA)与双模式(DM)算法或停走走走(SAG)算法结合使用,可以实现与信道行为的最佳匹配。只能通过调整步长以更新均衡器抽头矢量或通过更改数量来调整单个算法(如修改后的决策定向模数(MDDMA),修改后的恒定模数(MCMA)或修改后的决策定向(MDDA)算法的性能均衡器抽头。使用SAG或DM算法会引入标记(SAG)或置信区(DM),以进一步优化算法性能。将联合算法结合到SAG或DM算法中可产生一种优化算法,该算法具有不同算法的优势。新算法导致所需的发射功率降低了约22%,同时实现了相同的BER。除此之外,由于可以减小均衡器长度,因此相对于MDDMA,处理时间可以减少6%。

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