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High Dynamic Range Near-Eye Displays

机译:高动态范围近眼显示器

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摘要

The sensitivity of the human visual system to brightness and contrast is orders of magnitude higher than what current neareyedisplays can emulate. Although high brightness and contrast, which in combination is defined as high dynamic range(HDR) in this work, are critical to the realism provided by near-eye displays, these parameters are often compromised toachieve other major performance targets, such as resolution, field of view, form factor, and power consumption. Previously,various efforts from industry and academia resulted in HDR direct-view displays, and sometimes HDR near-eye displaytest beds. This work explores different technical approaches to integrated display systems with high brightness and contrast.HDR near-eye display test beds and form-factor-optimized prototypes were built based on dual modulation, where HDRdisplays were created by optically conjugating two low dynamic range light intensity modulators, in conjunction with highcontrast viewing optics. The viewing optics are custom designed to avoid Fresnel lenses and use only refractive surfaceswithout any slope discontinuity to minimize contrast reduction from stray light. The dual modulation display systemfollowed optical architectures similar to previous work by combining projectors and LCD display panels. However, thedisplay system was designed and optimized for miniaturization by using folded optics to meet a head-mounted form factor.The challenges in system architecture, display technologies, form factor reduction, optical design, as well as brightnessand contrast metrologies are discussed in detail.
机译:人类视觉系统对亮度和对比度的敏感性比当前的近眼高出几个数量级 显示可以模拟。尽管具有高亮度和对比度,但将其定义为高动态范围 (HDR)在这项工作中对于近眼显示器提供的真实感至关重要,这些参数通常会被折衷为 达到其他主要性能目标,例如分辨率,视野,形状因数和功耗。之前, 工业界和学术界的各种努力导致了HDR直视显示器,有时甚至是HDR近眼显示器 测试床。这项工作探索了具有高亮度和对比度的集成显示系统的不同技术方法。 HDR近眼显示器测试台和形状系数优化的原型是基于双调制技术构建的,其中HDR 显示器是通过光学结合两个低动态范围光强度调制器和一个高亮度来创建的 对比观察光学。观察镜是定制设计的,避免使用菲涅耳透镜,并且仅使用折射面 没有任何坡度不连续性,以最大程度减少杂散光造成的对比度降低。双调制显示系统 结合了投影仪和LCD显示面板,遵循了与以前工作类似的光学架构。但是,那 通过使用折叠式光学器件来满足头戴式外形尺寸的要求,设计并优化了显示系统,以实现小型化。 系统架构,显示技术,尺寸缩小,光学设计以及亮度方面的挑战 并详细讨论了对比度计量学。

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