Search papers, labs, and topics across Lattice.
This paper introduces a wave-optics rendering pipeline that leverages multiplane images (MPIs) to synthesize high-quality holograms for 3D displays. The method achieves remarkable speed improvements, with runtime enhancements of up to 250,000 times compared to state-of-the-art primitive-based computer-generated holography (CGH) algorithms, while maintaining comparable image quality. Extensive validation across diverse 3D scene datasets demonstrates its superior performance in 3D focal stack and 4D light field reconstruction, making it a significant advancement for immersive visual experiences.
Achieving a staggering 250,000x speedup in hologram synthesis without compromising image quality could redefine the future of 3D display technologies.
Recent advances in neural rendering have unlocked unprecedented capabilities in 3D reconstruction and novel view synthesis, giving rise to applications such as virtual fly-throughs of a 3D scene reconstructed from a set of sparse, casually captured images. However, these renderings are viewed on a computer screen or conventional VR headsets as 2D images, greatly limiting the perceptual realism and immersiveness of such experiences. The rapid development in novel 3D scene representations calls for dedicated rendering algorithms that convert these readily-available 3D contents into formats that are compatible with emerging 3D display technologies, such as holographic displays. In this paper, we propose a wave-optics rendering pipeline that works with multiplane images (MPIs) for efficient and high-quality hologram synthesis. Our MPI-based computer-generated holography algorithm greatly outperforms state-of-the-art primitive-based CGH algorithms in terms of runtime, achieving speedups up to 250,000x while achieving comparable image quality, and significantly outperforms conventional layer-based CGH algorithms in terms of image quality. We validate our method extensively on a wide variety of 3D scene datasets both in simulation and through experimentally captured results, showing exceptional 3D focal stack and 4D light field reconstruction performance without sacrificing efficiency.