Performance Characterization of 3D MEMs Lidar with Nonlinear Scanning Pattern

被引:0
|
作者
Chand, Aneesh N. [1 ]
机构
[1] Petronas Res Inst, Robot Lab, Facil Future, Bandar Baru Bangi, Malaysia
关键词
BASE-LINE;
D O I
10.1109/ISR50024.2021.9419510
中图分类号
TP [自动化技术、计算机技术];
学科分类号
0812 ;
摘要
The performance characterization of a 3D sensor from a relatively under-reported category of depth measurement sensors - a MEMs, laser light-based 3D sensor - is presented. A laser-light 3D MEMs sensor is distinct and different from canonical depth, ToF sensors or LIDARs but in terms of scan characteristics represents a confluence of all these types. Notably the intriguing feature of this sensor is the non-linear, non-monotonically varying scan pattern composed of overlapping curvilinear lines in the form of Lissajous trajectories such that the scan surface appears tesselated with variable-sized curved polygons, using a single laser diode. The sensing performance and merits of this type of scanning are analyzed and discussed. A noise model for the sensor jitter using simplified 3D Perlin noise is presented with justifications. Real data from several use cases and applications (obstacle detection, object segmentation, navigation and mapping) of the sensor are also provided. Considering criteria such as low noise levels, evenness of point distribution as well as higher scan density per unit area we find that this sensor provides superior performance in certain areas compared to other 3D sensors.
引用
收藏
页码:166 / 172
页数:7
相关论文
共 50 条
  • [31] In Vivo 3D and Doppler OCT Imaging Using Electrothermal MEMS Scanning Mirrors
    Sun, Jingjing
    Guo, Shuguang
    Wu, Lei
    Choe, Se-Woon
    Sorg, Brian
    Xie, Huikai
    MOEMS AND MINIATURIZED SYSTEMS IX, 2010, 7594
  • [32] Angle extended linear MEMS scanning system for 3D laser vision sensor
    Pang, Yajun
    Zhang, Yinxin
    Yang, Huaidong
    Zhu, Pan
    Gai, Ye
    Zhao, Jian
    Huang, Zhanhua
    INFRARED PHYSICS & TECHNOLOGY, 2016, 78 : 129 - 132
  • [33] Characterization and Performance Analysis for 3D Benchmarks
    Issa, Joseph
    JOURNAL OF COMPUTERS, 2012, 7 (11) : 2702 - 2710
  • [34] MEMS-based 3D confocal scanning microendoscope using MEMS scanners for both lateral and axial scan
    Liu, Lin
    Wang, Erkang
    Zhang, Xiaoyang
    Liang, Wenxuan
    Li, Xingde
    Xie, Huikai
    SENSORS AND ACTUATORS A-PHYSICAL, 2014, 215 : 89 - 95
  • [35] VECSEL for 3D LIDAR applications
    Herper, Markus
    Gronenborn, Stephan
    Gu, Xi
    Kolb, Johanna
    Miller, Michael
    Moench, Holger
    VERTICAL EXTERNAL CAVITY SURFACE EMITTING LASERS (VECSELS) IX, 2019, 10901
  • [36] Performance characterization of a 3D liquid scintillation detector for discrete spot scanning proton beam systems
    Darne, Chinmay D.
    Alsanea, Fahed
    Robertson, Daniel G.
    Sahoo, Narayan
    Beddar, Sam
    PHYSICS IN MEDICINE AND BIOLOGY, 2017, 62 (14): : 5652 - 5667
  • [37] 3D LiDAR SLAM: A survey
    Zhang, Yongjun
    Shi, Pengcheng
    Li, Jiayuan
    PHOTOGRAMMETRIC RECORD, 2024, 39 (186): : 457 - 517
  • [38] Lidar: Mapping the world in 3D
    Schwarz B.
    Nature Photonics, 2010, 4 (07) : 429 - 430
  • [39] 3D integration technologies for MEMS
    Gessner, Thomas
    Hofmann, Lutz
    Wang, Wei-Shan
    Baum, Mario
    Seifert, Tobias
    Wiemer, Maik
    Schulz, Stefan
    2016 13TH IEEE INTERNATIONAL CONFERENCE ON SOLID-STATE AND INTEGRATED CIRCUIT TECHNOLOGY (ICSICT), 2016, : 334 - 337
  • [40] 3D MEMS and IC integration
    Taklo, M. M. V.
    Lietaer, N.
    Tofteberg, H. R.
    Seppanen, T.
    Prainsack, J.
    Weber, J.
    Ramm, P.
    MATERIALS AND TECHNOLOGIES FOR 3-D INTEGRATION, 2009, 1112 : 211 - 220