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采用具有偏振复用的单图像生成单元的紧凑型双焦点增强现实平视显示器。

Compact dual-focal augmented reality head-up display using a single picture generation unit with polarization multiplexing.

作者信息

Liu Yi, Dong Jiaqi, Qiu Yuqing, Yang Bo-Ru, Qin Zong

出版信息

Opt Express. 2023 Oct 23;31(22):35922-35936. doi: 10.1364/OE.502617.

Abstract

The augmented reality head-up display (AR-HUD) attracts increasing attention. It features multiple focal planes to display basic and AR information, as well as a wider field of view (FOV). Using two picture generation units (PGUs) to create dual-focal AR-HUDs leads to expanded size, increased cost, and reduced reliability. Thus, we previously proposed an improved solution by dividing one PGU into two partitions that were separately imaged into two virtual images with an optical relay system. However, the resolution of the PGU was halved for either virtual image. Regarding the drawbacks, this paper proposes a dual-focal AR-HUD using one PGU and one freeform mirror. Either virtual image utilizes the full resolution of the PGU through polarization-multiplexing. By performing optical design optimization, high image quality, except for the distortion, is achieved in an eyebox of 130 by 60 mm for far (10 m, 13° by 4°) and near (2.5 m, 10° by 1°) images. Next, we propose a distortion correction method by directly inputting the distorted but clear images acquired in the design stage into the real HUD with an inversed optical path. The proposed optical architecture enables a compact system volume of 9.5 L, close to traditional single-focal HUDs. Finally, we build an AR-HUD prototype, where a polarizing reflective film and a twisted nematic liquid crystal cell achieve polarization-multiplexing. The expected image quality of the two virtual images is experimentally verified.

摘要

增强现实抬头显示器(AR - HUD)越来越受到关注。它具有多个焦平面来显示基本信息和AR信息,以及更宽的视野(FOV)。使用两个图像生成单元(PGU)来创建双焦AR - HUD会导致尺寸增大、成本增加和可靠性降低。因此,我们之前提出了一种改进方案,即将一个PGU分成两个分区,通过光学中继系统分别成像为两个虚拟图像。然而,对于任何一个虚拟图像,PGU的分辨率都减半了。针对这些缺点,本文提出了一种使用一个PGU和一个自由曲面镜的双焦AR - HUD。通过偏振复用,两个虚拟图像都能利用PGU的全分辨率。通过进行光学设计优化,对于远(10 m,13°×4°)和近(2.5 m,10°×1°)图像,在130×60 mm的眼盒内实现了除失真外的高图像质量。接下来,我们提出了一种失真校正方法,通过将设计阶段获取的失真但清晰的图像以相反的光路直接输入到实际的HUD中。所提出的光学架构使系统体积紧凑至9.5 L,接近传统的单焦HUD。最后,我们构建了一个AR - HUD原型,其中偏振反射膜和扭曲向列液晶盒实现了偏振复用。通过实验验证了两个虚拟图像的预期图像质量。

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