论文标题

元表面增强的光检测和范围技术

Metasurface-enhanced Light Detection and Ranging Technology

论文作者

Martins, Renato Juliano, Marinov, Emil, Youssef, M. Aziz Ben, Kyrou, Christina, Joubert, Mathilde, Colmagro, Constance, Gâté, Valentin, Turbil, Colette, Coulon, Pierre-Marie, Turover, Daniel, Khadir, Samira, Giudici, Massimo, Klitis, Charalambos, Sorel, Marc, Genevet, Patrice

论文摘要

通过模仿人类视觉,将先进的成像解决方案部署到机器人和自主系统上需要同时予以获取多个视野,并被称为外围和中央凹区。低分辨率外围场提供了粗糙的场景探索,可以将眼睛引导到高度分辨的中央凹区域进行锋利的成像。在3D计算机视觉技术中,目前在工业层面考虑了机器人视觉的光检测和射程(LIDAR)。 LIDAR是一种成像技术,可在光频率下监视光脉冲以感知空间并恢复三维范围信息。尽管在激光雷达整合和优化方面做出了努力,但可商购的设备的帧速率和低图像分辨率较低,特别受到机械或慢速固态偏转系统的性能的限制。 Metasurfaces(MS)是多功能的光学组件,可以在所需的空间区域分布光电功率。在这里,我们报告了一种先进的LiDAR技术,该技术使用了超快的低FOV偏转器,这些偏转器与大面积的跨空地层叠在一起,以实现大型FOV和同时的外围和中央成像区域。这项技术可实现2D成像的MHz帧速率,而对于3D成像的kHz最高可达到kHz,并具有极大的FOV(在垂直和水平扫描轴上均高达150°度)。这种破坏性的激光雷达技术与高级学习算法的使用提供了观点,可以进一步提高自动驾驶汽车和机器人系统的感知能力和决策过程。

Deploying advanced imaging solutions to robotic and autonomous systems by mimicking human vision requires simultaneous acquisition of multiple fields of views, named the peripheral and fovea regions. Low-resolution peripheral field provides coarse scene exploration to direct the eye to focus to a highly resolved fovea region for sharp imaging. Among 3D computer vision techniques, Light Detection and Ranging (LiDAR) is currently considered at the industrial level for robotic vision. LiDAR is an imaging technique that monitors pulses of light at optical frequencies to sense the space and to recover three-dimensional ranging information. Notwithstanding the efforts on LiDAR integration and optimization, commercially available devices have slow frame rate and low image resolution, notably limited by the performance of mechanical or slow solid-state deflection systems. Metasurfaces (MS) are versatile optical components that can distribute the optical power in desired regions of space. Here, we report on an advanced LiDAR technology that uses ultrafast low FoV deflectors cascaded with large area metasurfaces to achieve large FoV and simultaneous peripheral and central imaging zones. This technology achieves MHz frame rate for 2D imaging, and up to KHz for 3D imaging, with extremely large FoV (up to 150°deg. on both vertical and horizontal scanning axes). The use of this disruptive LiDAR technology with advanced learning algorithms offers perspectives to improve further the perception capabilities and decision-making process of autonomous vehicles and robotic systems.

扫码加入交流群

加入微信交流群

微信交流群二维码

扫码加入学术交流群,获取更多资源