Deep Learning Enhanced Quantum Holography with Undetected Photons
arXiv:2409.18887 · doi:10.1186/s43074-024-00155-2
Abstract
Holography is an essential technique of generating three-dimensional images. Recently, quantum holography with undetected photons (QHUP) has emerged as a groundbreaking method capable of capturing complex amplitude images. Despite its potential, the practical application of QHUP has been limited by susceptibility to phase disturbances, low interference visibility, and limited spatial resolution. Deep learning, recognized for its ability in processing complex data, holds significant promise in addressing these challenges. In this report, we present an ample advancement in QHUP achieved by harnessing the power of deep learning to extract images from single-shot holograms, resulting in vastly reduced noise and distortion, alongside a notable enhancement in spatial resolution. The proposed and demonstrated deep learning QHUP (DL-QHUP) methodology offers a transformative solution by delivering high-speed imaging, improved spatial resolution, and superior noise resilience, making it suitable for diverse applications across an array of research fields stretching from biomedical imaging to remote sensing. DL-QHUP signifies a crucial leap forward in the realm of holography, demonstrating its immense potential to revolutionize imaging capabilities and pave the way for advancements in various scientific disciplines. The integration of DL-QHUP promises to unlock new possibilities in imaging applications, transcending existing limitations and offering unparalleled performance in challenging environments.
References in corpus (13)
- PyTorch: An Imperative Style, High-Performance Deep Learning Library
- Rapid identification of pathogenic bacteria using Raman spectroscopy and deep learning
- Quantum Imaging with Undetected Photons
- Deep Learning Microscopy
- Deep speckle correlation: a deep learning approach towards scalable imaging through scattering media
- Infrared Spectroscopy with Visible Light
- Superpixel-based spatial amplitude and phase modulation using a digital micromirror device
- Quantum holography with undetected light
- Tunable Optical Coherence Tomography in the Infrared Range Using Visible Photons
- Quantum Indistinguishability by Path Identity: The awakening of a sleeping beauty
- Optical sectioning in induced coherence tomography with frequency-entangled photons
- Pixel super-resolution using spatially-entangled photon pairs
- Quantum Induced Coherence Light Detection and Ranging