Practical High-Contrast Holography (2410.19347v1)
Abstract: Holographic displays are a promising technology for immersive visual experiences, and their potential for compact form factor makes them a strong candidate for head-mounted displays. However, at the short propagation distances needed for a compact, head-mounted architecture, image contrast is low when using a traditional phase-only spatial light modulator (SLM). Although a complex SLM could restore contrast, these modulators require bulky lenses to optically co-locate the amplitude and phase components, making them poorly suited for a compact head-mounted design. In this work, we introduce a novel architecture to improve contrast: by adding a low resolution amplitude SLM a short distance away from the phase modulator, we demonstrate peak signal-to-noise ratio improvement up to 31 dB in simulation compared to phase-only, even when the amplitude modulator is 60$\times$ lower resolution than its phase counterpart. We analyze the relationship between diffraction angle and amplitude modulator pixel size, and validate the concept with a benchtop experimental prototype. By showing that low resolution modulation is sufficient to improve contrast, we pave the way towards practical high-contrast holography in a compact form factor.
- Compact noise-filtering volume gratings for holographic displays. Opt. Lett. 44, 9 (May 2019), 2133–2136. https://doi.org/10.1364/OL.44.002133
- Olof Bryngdahl and Adolf Lohmann. 1968. Single-Sideband Holography∗∗\ast∗. J. Opt. Soc. Am. 58, 5 (May 1968), 620–624. https://doi.org/10.1364/JOSA.58.000620
- P. Burt and E. Adelson. 1983. The Laplacian Pyramid as a Compact Image Code. IEEE Transactions on Communications 31, 4 (1983), 532–540. https://doi.org/10.1109/TCOM.1983.1095851
- Pupil-aware holography. ACM Trans. Graph. (2022).
- Differentiable cameras and displays. In ACM SIGGRAPH 2022 Courses. 1–213.
- Learned hardware-in-the-loop phase retrieval for holographic near-eye displays. ACM Transactions on Graphics 39, 6 (2020). https://doi.org/10.1145/3414685.3417846
- High-brightness holographic projection. Opt. Lett. 48, 15 (Aug 2023), 4041–4044. https://doi.org/10.1364/OL.489617
- Neural 3D Holography: Learning Accurate Wave Propagation Models for 3D Holographic Virtual and Augmented Reality Displays. ACM Transactions on Graphics 40, 6 (2021). https://doi.org/10.1145/3478513.3480542
- Optimizing image quality for holographic near-eye displays with michelson holography. Optica 8, 2 (2021), 143–146.
- George Curatu and James E Harvey. 2009. Analysis and design of wide-angle foveated optical systems based on transmissive liquid crystal spatial light modulators. Optical Engineering 48, 4 (2009), 043001–043001.
- High Brightness HDR Projection Using Dynamic Freeform Lensing. ACM Trans. Graph. 35, 3, Article 24 (may 2016), 11Â pages. https://doi.org/10.1145/2857051
- Compact see-through 3D head-mounted display based on wavefront modulation with holographic grating filter. Opt. Express 25, 7 (Apr 2017), 8412–8424. https://doi.org/10.1364/OE.25.008412
- Monocular 3D see-through head-mounted display via complex amplitude modulation. Opt. Express 24, 15 (Jul 2016), 17372–17383. https://doi.org/10.1364/OE.24.017372
- Joseph W Goodman. 2005. Introduction to Fourier optics. Roberts and Company publishers.
- Unfiltered holography: optimizing high diffraction orders without optical filtering for compact holographic displays. Opt. Lett. 46, 23 (Dec 2021), 5822–5825. https://doi.org/10.1364/OL.442851
- Holoeye. 2024. GAEA-2 10 Megapixel Phase Only LCOS-SLM. https://holoeye.com/products/spatial-light-modulators/gaea-2-phase-only/ [Online; accessed 13-May-2024].
- Improvement of the complex modulated characteristic of cascaded liquid crystal spatial light modulators by using a novel amplitude compensated technique. Optical Engineering 46, 7 (2007), 070501. https://doi.org/10.1117/1.2750658
- C. K. Hsueh and A. A. Sawchuk. 1978. Computer-generated double-phase holograms. Appl. Opt. 17, 24 (Dec 1978), 3874–3883. https://doi.org/10.1364/AO.17.003874
- Near-perfect hologram reconstruction with a spatial light modulator. Opt. Express 16, 4 (Feb 2008), 2597–2603. https://doi.org/10.1364/OE.16.002597
- Transport of Intensity phase imaging by intensity spectrum fitting of exponentially spaced defocus planes. Opt. Express 22, 9 (May 2014), 10661–10674. https://doi.org/10.1364/OE.22.010661
- Learned holographic light transport. Applied Optics 61, 5 (2022), B50–B55.
- Accommodative holography: improving accommodation response for perceptually realistic holographic displays. ACM Trans. Graph. 41, 4, Article 111 (jul 2022), 15Â pages. https://doi.org/10.1145/3528223.3530147
- Holographic Glasses for Virtual Reality. In ACM SIGGRAPH 2022 Conference Proceedings (Vancouver, BC, Canada) (SIGGRAPH ’22). Association for Computing Machinery, New York, NY, USA, Article 33, 9 pages. https://doi.org/10.1145/3528233.3530739
- Holographic glasses for virtual reality. In ACM SIGGRAPH 2022 Conference Proceedings. 1–9.
- Diederik P Kingma and Jimmy Ba. 2014. Adam: A method for stochastic optimization. arXiv (2014).
- Multisource Holography. ACM Trans. Graph. 42, 6, Article 203 (dec 2023), 14Â pages. https://doi.org/10.1145/3618380
- High-contrast, speckle-free, true 3D holography via binary CGH optimization. Scientific Reports 12, 1 (Feb. 2022). https://doi.org/10.1038/s41598-022-06405-2
- Complex Fresnel hologram display using a single SLM. Appl. Opt. 50, 34 (Dec 2011), H128–H135. https://doi.org/10.1364/AO.50.00H128
- Holographic near-eye displays for virtual and augmented reality. ACM Trans. Graph. 36, 4, Article 85 (jul 2017), 16Â pages. https://doi.org/10.1145/3072959.3073624
- Full-range, continuous, complex modulation by the use of two coupled-mode liquid-crystal televisions. Appl. Opt. 35, 23 (Aug 1996), 4567–4576. https://doi.org/10.1364/AO.35.004567
- Characteristics of complex light modulation through an amplitude-phase double-layer spatial light modulator. Opt. Express 25, 4 (Feb 2017), 3469–3480. https://doi.org/10.1364/OE.25.003469
- Neural holography with camera-in-the-loop training. ACM Transactions on Graphics (TOG) 39, 6 (2020), 1–14.
- Full-range, complex spatial light modulator for real-time holography. Opt. Lett. 37, 11 (Jun 2012), 1955–1957. https://doi.org/10.1364/OL.37.001955
- Kornia: an Open Source Differentiable Computer Vision Library for PyTorch. In 2020 IEEE Winter Conference on Applications of Computer Vision (WACV). 3663–3672.
- Stochastic Light Field Holography. In 2023 IEEE International Conference on Computational Photography (ICCP). IEEE, 1–12.
- Towards real-time photorealistic 3D holography with deep neural networks. Nature 591 (2021), 234 – 239. https://api.semanticscholar.org/CorpusID:232197271
- Ergonomic-Centric Holography: Optimizing Realism, Immersion, and Comfort for Holographic Display. Laser & Photonics Reviews 18, 4 (2024), 2300651.
- Diffuserless holographic projection working on twin spatial light modulators. Opt. Lett. 37, 24 (Dec 2012), 5064–5066. https://doi.org/10.1364/OL.37.005064
- Optimal synthesis of double-phase computer generated holograms using a phase-only spatial light modulator with grating filter. Opt. Express 20, 28 (Dec 2012), 29844–29853. https://doi.org/10.1364/OE.20.029844
- Non-convex optimization for inverse problem solving in computer-generated holography. Light: Science and Applications 13, 158 (2024). https://doi.org/10.1038/s41377-024-01446-w
- Complex amplitude modulated holographic display system based on polarization grating. Opt. Express 31, 2 (Jan 2023), 1092–1102. https://doi.org/10.1364/OE.478561
- Generalized single-sideband three-dimensional computer-generated holography. Opt. Express 27, 3 (Feb 2019), 2612–2620. https://doi.org/10.1364/OE.27.002612
- Optimization of computer-generated holograms featuring phase randomness control. Optics Letters 46, 19 (2021), 4769–4772.
Sponsor
Paper Prompts
Sign up for free to create and run prompts on this paper using GPT-5.
Top Community Prompts
Collections
Sign up for free to add this paper to one or more collections.