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Impact of Nonlinear Distortion in Pulse-Doppler Radar Receivers

机译:脉冲多普勒雷达接收机中非线性失真的影响

摘要

The aim of the thesis is to study the applicability of Direct Conversion Receiver (DCR) in radar, as these receivers possess the advantage of reduced complexity and fewer bandwidth limiting components compared to the superheterodyne receiver. As the wireless technology, it is also necessary to study about the receiver functionalities in radar using Digital Signal Processing (DSP) techniques. In today’s radar technology, designing the front end part of the radar receiver is more challenging, especially radar employing DCR, as these receivers are more prone to non-idealities such as I/Q Imbalance, non-linear distortion, DC offset and phase noise thereby affecting the dynamic range of the received echo signal. The pulse doppler radar is chosen in the thesis, as these radars are coherent, also capable of multiple target detection and provide large unambiguous range. The objective of the thesis is to analyse the effect of non-linear distortion such as second and third order distortion and observing the effects of these non-linearities in post-processing blocks. In this thesis baseband non-linearities in I and Q branches of the radar receiver are more specifically addressed than the RF non-linearity and blockers. The analysis is carried out in such a way that, the basic mathematical expressions for the RF signal in the transmitter part and received echo signal at baseband considering the effect of doppler are modelled. The second and third order non-linearities are modelled with some special cases by introducing some imbalances in I and Q branches and the effect of increasing the doppler frequency beyond the specified Pulse Repetition Frequency (PRF) is to be analysed. The effects of non-linearities are observed in post-processing blocks of the pulse doppler radar receivers. Thus, the final stage in the radar receiver blocks includes matched filtering or pulse compression and doppler processing as they are capable of separating target and clutter. The matched filtering or pulse compression follows Linear Frequency Modulation technique (LFM) as it is simple to generate the signal and insensitivity to doppler shifts. The pulse compression or matched filtering maximizes the Signal-to-Noise Ratio (SNR) by reducing the sidelobe levels using appropriate weighting functions so as to improve the resolution of the target. The doppler processing is capable of separating the target and clutter thereby improving the Signal-to-Clutter Ratio (SCR). The target signal is recorded and observed in a Range/ Doppler (R/D) matrix where the various parameters such as range, doppler information that includes measuring the doppler shift and radial velocity, location of the target etc. can be estimated. Other than the parameter estimation, the effect of non-linearities is observed in the R/D matrix. Comparisons of ideal scenario and non-ideal scenario and tabulations illustrating the comparison of second and third order distortion profiles are illustrated in the thesis to study about the performance and practicality of the radar receivers.
机译:本文的目的是研究直接转换接收器(DCR)在雷达中的适用性,因为与超外差接收器相比,这些接收器具有降低复杂度和减少带宽限制的优点。作为无线技术,也有必要使用数字信号处理(DSP)技术来研究雷达中的接收机功能。在当今的雷达技术中,设计雷达接收器的前端部分更具挑战性,尤其是采用DCR的雷达,因为这些接收器更容易出现非理想情况,例如I / Q不平衡,非线性失真,DC偏移和相位噪声从而影响接收回波信号的动态范围。本文选择脉冲多普勒雷达,因为这些雷达是相干的,还能够进行多目标检测并提供较大的明确范围。本文的目的是分析非线性失真的影响,例如二阶和三阶失真,并观察这些非线性在后处理块中的影响。在本文中,与RF非线性和阻塞器相比,雷达接收机的I和Q分支中的基带非线性得到了更具体的解决。进行分析的方式是,对考虑多普勒效应的发射机部分中的RF信号和基带处的接收回波信号进行建模的基本数学表达式。在某些特殊情况下,通过在I和Q分支中引入一些不平衡来模拟二阶和三阶非线性,并分析将多普勒频率增加到超过指定的脉冲重复频率(PRF)的效果。在脉冲多普勒雷达接收器的后处理模块中观察到了非线性的影响。因此,雷达接收器模块的最后阶段包括匹配的滤波或脉冲压缩以及多普勒处理,因为它们能够分离目标和杂波。匹配的滤波或脉冲压缩遵循线性调频技术(LFM),因为它易于生成信号并且对多普勒频移不敏感。脉冲压缩或匹配滤波通过使用适当的加权函数降低旁瓣电平来最大化信噪比(SNR),从而提高目标的分辨率。多普勒处理能够分离目标和杂波,从而提高信噪比(SCR)。在范围/多普勒(R / D)矩阵中记录和观察目标信号,在该矩阵中可以估算各种参数,例如范围,包括测量多普勒频移和径向速度的多普勒信息,目标位置等。除了参数估计以外,在R / D矩阵中还观察到了非线性的影响。为了说明雷达接收机的性能和实用性,本文对理想方案和非理想方案进行了比较,并给出了说明二阶和三阶失真分布的比较的表格。

著录项

  • 作者

    Ganesh Pradeep;

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  • 年度 2013
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  • 原文格式 PDF
  • 正文语种 en
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