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Automotive Radars: A review of signal processing techniques

机译:汽车雷达:信号处理技术的回顾

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摘要

Automotive radars, along with other sensors such as lidar, (which stands for "light detection and ranging"), ultrasound, and cameras, form the backbone of self-driving cars and advanced driver assistant systems (ADASs). These technological advancements are enabled by extremely complex systems with a long signal processing path from radars/sensors to the controller. Automotive radar systems are responsible for the detection of objects and obstacles, their position, and speed relative to the vehicle. The development of signal processing techniques along with progress in the millimeter-wave (mm-wave) semiconductor technology plays a key role in automotive radar systems. Various signal processing techniques have been developed to provide better resolution and estimation performance in all measurement dimensions: range, azimuth-elevation angles, and velocity of the targets surrounding the vehicles. This article summarizes various aspects of automotive radar signal processing techniques, including waveform design, possible radar architectures, estimation algorithms, implementation complexity-resolution trade off, and adaptive processing for complex environments, as well as unique problems associated with automotive radars such as pedestrian detection. We believe that this review article will combine the several contributions scattered in the literature to serve as a primary starting point to new researchers and to give a bird's-eye view to the existing research community.
机译:汽车雷达以及激光雷达等其他传感器(代表“光检测和测距”),超声波和摄像头,构成了自动驾驶汽车和高级驾驶员辅助系统(ADAS)的骨干。这些技术进步是通过极其复杂的系统实现的,该系统具有从雷达/传感器到控制器的长信号处理路径。汽车雷达系统负责检测物体和障碍物,它们的位置以及相对于车辆的速度。信号处理技术的发展以及毫米波(mm-wave)半导体技术的进步在汽车雷达系统中起着关键作用。已经开发出各种信号处理技术以在所有测量维度上提供更好的分辨率和估计性能:范围,方位角和车辆周围目标的速度。本文总结了汽车雷达信号处理技术的各个方面,包括波形设计,可能的雷达体系结构,估计算法,实现复杂度-分辨率的折衷以及针对复杂环境的自适应处理,以及与汽车雷达相关的独特问题,例如行人检测。 。我们相信这篇评论文章将结合散布在文献中的几篇文章,作为新研究人员的主要起点,并为现有研究界提供鸟瞰图。

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