Suppression of Doppler dispersion in the target detection with multi-carrier signal

Yang Chao , Wang Mei , Zheng Lin , Tang Jianming
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引用次数: 1

Abstract

The output of each individual channel in multi-carrier system can be processed to detect moving targets by the approach used in tradition narrowband pulse Doppler (PD) radar and then using non-coherent integration to promote signal noise ratio (SNR). However, due to the difference of Doppler on sub-carriers, there occurs Doppler dispersion during non-coherent integration, which causes attenuation and extension on target's amplitude. Especially, it can deteriorate performance of target detection under wideband multicarrier system or fast-moving target scene. In this paper, a modified Fourier transform kernel is proposed to solve Doppler dispersion for multi-carrier chirp signal. It can achieve accumulation at the same frequency point for the target's Doppler of each subcarrier. The simulation results indicate that this method can effectively eliminate the integral loss caused by Doppler dispersion.

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多载波信号目标检测中多普勒频散的抑制
采用传统窄带脉冲多普勒(PD)雷达的方法,对多载波系统中每个单独信道的输出进行处理,以检测运动目标,然后使用非相干积分来提高信噪比。然而,由于子载波上多普勒的差异,在非相干积分过程中会出现多普勒频散,从而导致目标幅度的衰减和扩展。特别是在宽带多载波系统或快速移动的目标场景下,它会降低目标检测的性能。本文提出了一种改进的傅立叶变换核来解决多载波线性调频信号的多普勒频散问题。它可以实现每个子载波的目标多普勒在同一频率点的累积。仿真结果表明,该方法可以有效地消除多普勒频散引起的积分损失。
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