Correction method for walk error based on the shape of reflective surface in LiDAR

IF 3.1 3区 物理与天体物理 Q2 Engineering
Optik Pub Date : 2023-05-01 DOI:10.1016/j.ijleo.2023.170527
Kyong Hyok Choe, Un Chol Choe, In Jun Ri
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引用次数: 0

Abstract

Walk error produced in light detection and ranging (LiDAR) based on the time-of-flight (TOF) leads to loss of ranging accuracy. Walk error, which is systematic and correctable, is mainly attributed to the distance to the target, reflectance, the shape of reflective surface, and so on. In particular, various shapes of received pulse based on the shape of reflective surface have a considerable effect on the ranging accuracy. In this paper an incoherent pulsed laser echo equation for different shapes of reflective surface is established and it is found that parameters that can represent various shapes of received pulse involve received pulse width and slew rate. A measurement method of pulse width and slew rate combining a constant fraction discriminator (CFD) principle with a time over threshold (TOT) is proposed. It is also found that the proposed method is more efficient in walk error correction than the TOT by obtaining walk error corrections corresponding to pulse width and slew rate and determining the corresponding 2D surface polynomial coefficients. The obtained polynomial coefficients are used to ensure the ranging accuracy of the LiDAR within ± 3 cm.

基于激光雷达反射面形状的行走误差校正方法
基于飞行时间(TOF)的光探测和测距(LiDAR)中产生的漫游误差导致测距精度的损失。漫游误差是系统的、可校正的,主要归因于到目标的距离、反射率、反射表面的形状等。特别是基于反射表面形状的各种形状的接收脉冲对测距精度有很大影响。本文建立了不同形状反射表面的非相干脉冲激光回波方程,发现可以代表不同形状接收脉冲的参数包括接收脉冲宽度和转换速率。提出了一种将恒定分数鉴别器(CFD)原理与时间过阈值(TOT)相结合的脉冲宽度和转换速率测量方法。还发现,通过获得与脉冲宽度和转换速率相对应的行走误差校正并确定相应的2D表面多项式系数,所提出的方法在行走误差校正方面比TOT更有效。所获得的多项式系数用于确保激光雷达的测距精度在±3cm以内。
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来源期刊
Optik
Optik 物理-光学
CiteScore
6.90
自引率
12.90%
发文量
1471
审稿时长
46 days
期刊介绍: Optik publishes articles on all subjects related to light and electron optics and offers a survey on the state of research and technical development within the following fields: Optics: -Optics design, geometrical and beam optics, wave optics- Optical and micro-optical components, diffractive optics, devices and systems- Photoelectric and optoelectronic devices- Optical properties of materials, nonlinear optics, wave propagation and transmission in homogeneous and inhomogeneous materials- Information optics, image formation and processing, holographic techniques, microscopes and spectrometer techniques, and image analysis- Optical testing and measuring techniques- Optical communication and computing- Physiological optics- As well as other related topics.
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