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Demonstration of a polarization diversity based SH-QPSK system with CMA-DFE equalizer

机译:CMA-DFE均衡器的SH-QPSK系统偏振分集的演示

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An optimum solution for a low power and low cost coherent optical receiver design can be obtained by a self homodyne (SH) system that uses analog domain processing. An SH system eliminates the need of a local oscillator (LO) and a carrier phase recovery (CPR) module at the receiver. Due to the inherent line-width tolerance of SH systems, an expensive laser is not required at the transmitter. In digital processing based receivers, analog-to-digital converters (ADC) are the dominant source of power and cost; signal processing in the analog domain can get rid of the usage of ADCs. Combination of these two approaches can lead to a huge power and cost saving. An SH-QPSK system with a polarization multiplexed carrier is experimentally demonstrated with a 28km standard single mode fiber (SSMF) channel and off-line signal processing at the receiver side. The system does not use any optical amplification and dispersion compensating fiber. A novel analog domain constant modulus algorithm-decision feedback equalizer (CMA-DFE) is proposed which is a cascade combination of two different types of equalizers. This proposed scheme gives improvement in the performance over an optimum CMA equalizer, because of the difference of minimum mean square errors (MMSE) of two different cost functions.
机译:低功率和低成本相干光接收器设计的最佳解决方案可以通过使用模拟域处理的自同性差(SH)系统获得。 SH系统消除了在接收器处的本地振荡器(LO)和载波相位恢复(CPR)模块的需求。由于SH系统的固有线宽容差,发射器不需要昂贵的激光器。在基于数字处理的接收器中,模数转换器(ADC)是主要的功率和成本的主要来源;模拟域中的信号处理可以摆脱ADC的使用。这两种方法的组合可以导致巨大的力量和节省成本。具有偏振多路复用载波的SH-QPSK系统通过28km标准单模光纤(SSMF)通道和接收器侧的离线信号处理进行了实验证明。该系统不使用任何光学放大和色散补偿光纤。提出了一种新颖的模数常量模量算法决策反馈均衡器(CMA-DFE),这是两种不同类型均衡器的级联组合。该提出的方案提高了最佳CMA均衡器的性能,因为两种不同成本函数的最小均方误差(MMSE)的差异。

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