Department of Biomedical Engineering, Duke University, Durham, NC, 27708, USA.
Department of Ophthalmology, Duke University Medical Center, Durham, NC, 27710, USA.
Nat Commun. 2022 Mar 29;13(1):1476. doi: 10.1038/s41467-022-29177-9.
Frequency-modulated continuous wave (FMCW) light detection and ranging (LiDAR) is an emerging 3D ranging technology that offers high sensitivity and ranging precision. Due to the limited bandwidth of digitizers and the speed limitations of beam steering using mechanical scanners, meter-scale FMCW LiDAR systems typically suffer from a low 3D frame rate, which greatly restricts their applications in real-time imaging of dynamic scenes. In this work, we report a high-speed FMCW based 3D imaging system, combining a grating for beam steering with a compressed time-frequency analysis approach for depth retrieval. We thoroughly investigate the localization accuracy and precision of our system both theoretically and experimentally. Finally, we demonstrate 3D imaging results of multiple static and moving objects, including a flexing human hand. The demonstrated technique achieves submillimeter localization accuracy over a tens-of-centimeter imaging range with an overall depth voxel acquisition rate of 7.6 MHz, enabling densely sampled 3D imaging at video rate.
调频连续波(FMCW)激光探测和测距(LiDAR)是一种新兴的 3D 测距技术,具有高灵敏度和测距精度。由于模数转换器的带宽有限,以及使用机械扫描仪进行光束转向的速度限制,米级 FMCW LiDAR 系统通常具有较低的 3D 帧率,这极大地限制了它们在动态场景实时成像中的应用。在这项工作中,我们报告了一种高速 FMCW 基于 3D 成像系统,该系统结合了用于光束转向的光栅和用于深度检索的压缩时频分析方法。我们从理论和实验两个方面彻底研究了我们系统的定位精度和精度。最后,我们演示了多个静态和动态物体的 3D 成像结果,包括弯曲的人手。所展示的技术在数十厘米的成像范围内实现了亚毫米级的定位精度,整体深度体素采集率为 7.6MHz,实现了视频速率的密集采样 3D 成像。