Li Xiaolu, Wang Hongming, Yang Bingwei, Huyan Jiayue, Xu Lijun
School of Instrument Science and Opto-Electronic Engineering, Beihang University, Beijing 100191, China.
State Key Laboratory of Inertial Science and Technology, School of Instrumentation Science and Opto-electronic Engineering, Beihang University, Beijing 100191, China.
Sensors (Basel). 2017 Oct 17;17(10):2369. doi: 10.3390/s17102369.
A pulsed time-of-flight (TOF) measurement-based Light Detection and Ranging (LiDAR) system is more effective for medium-long range distances. As a key ranging unit, a time-pickoff circuit based on automatic gain control (AGC) and constant fraction discriminator (CFD) is designed to reduce the walk error and the timing jitter for obtaining the accurate time interval. Compared with Cramer-Rao lower bound (CRLB) and the estimation of the timing jitter, four parameters-based Monte Carlo simulations are established to show how the range precision is influenced by the parameters, including pulse amplitude, pulse width, attenuation fraction and delay time of the CFD. Experiments were carried out to verify the relationship between the range precision and three of the parameters, exclusing pulse width. It can be concluded that two parameters of the ranging circuit (attenuation fraction and delay time) were selected according to the ranging performance of the minimum pulse amplitude. The attenuation fraction should be selected in the range from 0.2 to 0.6 to achieve high range precision. The selection criterion of the time-pickoff circuit parameters is helpful for the ranging circuit design of TOF LiDAR system.
基于脉冲飞行时间(TOF)测量的激光雷达(LiDAR)系统在中长距离测量中更有效。作为关键的测距单元,设计了一种基于自动增益控制(AGC)和恒比鉴别器(CFD)的时间提取电路,以减少走时误差和定时抖动,从而获得准确的时间间隔。与克拉美罗下界(CRLB)和定时抖动估计相比,建立了基于四个参数的蒙特卡罗模拟,以展示距离精度如何受到脉冲幅度、脉冲宽度、衰减分数和CFD延迟时间等参数的影响。进行了实验以验证距离精度与其中三个参数(不包括脉冲宽度)之间的关系。可以得出结论,根据最小脉冲幅度的测距性能选择测距电路的两个参数(衰减分数和延迟时间)。衰减分数应在0.2至0.6的范围内选择,以实现高距离精度。时间提取电路参数的选择标准有助于TOF LiDAR系统的测距电路设计。