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Self-IQ-Demodulation Based Compensation Scheme of Frequency-Dependent IQ Imbalance for Wideband Direct-Conversion Transmitters

机译:基于自IQ解调的宽带直接转换发射机基于频率的IQ不平衡补偿方案

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摘要

A low cost frequency-dependent (FD) I/Q imbalance self-compensation scheme is investigated in this paper. The direct conversion transmitters are widely used in wireless systems. However, the unwanted image-frequencies and distortions are inevitably introduced into the direct conversion system. This problem is even severer in wideband systems. Therefore, the accurate estimation and compensation of I/Q imbalance is crucial. The current compensation method is based on external instruments or internal feedback path which introduces additional impairments and is expensive. This paper proposes a low cost FD I/Q imbalance self-IQ-demodulation based compensation scheme without using external calibration instruments. First, the impairments of baseband and RF components are investigated. Further, I/Q imbalance model is developed. Then, the proposed two-step self-IQ-demodulation based compensation scheme is investigated. In the first step of the scheme, the local oscillator (LO) related I/Q impairments parameters are estimated. Then in the second step, the overall FD I/Q imbalance parameters are estimated by utilizing the transmitter LO. To realize this self-IQ-demodulation algorithm, this paper introduces minor modifications to the current power detector circuit. Afterwards, the estimated parameters are applied to the baseband equivalent compensator. This sophisticated algorithm guarantees low computation complexity and low cost. The compensation performance is evaluated in laboratory measurement.
机译:本文研究了一种低成本的频率相关(FD)I / Q不平衡自补偿方案。直接转换发射机广泛用于无线系统。然而,不可避免的图像频率和失真不可避免地被引入到直接转换系统中。在宽带系统中,这个问题甚至更加严重。因此,准确估计和补偿I / Q不平衡至关重要。当前的补偿方法基于外部仪器或内部反馈路径,这会带来额外的损害,并且价格昂贵。本文提出了一种无需使用外部校准工具的低成本FD I / Q不平衡自IQ解调补偿方案。首先,研究了基带和射频成分的损伤。此外,开发了I / Q不平衡模型。然后,研究了基于两步自IQ解调的补偿方案。在该方案的第一步,估计与本地振荡器(LO)相关的I / Q损伤参数。然后,在第二步中,通过利用发送器LO估算总体FD I / Q不平衡参数。为了实现这种自IQ解调算法,本文对电流功率检测器电路进行了较小的修改。然后,将估计的参数应用于基带等效补偿器。这种复杂的算法可确保较低的计算复杂度和低成本。在实验室测量中评估补偿性能。

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