论文标题
高分辨率的多光谱成像,具有衍射镜头和学习的重建
High-resolution Multi-spectral Imaging with Diffractive Lenses and Learned Reconstruction
论文作者
论文摘要
光谱成像是具有广泛应用的基本诊断技术。传统的光谱成像方法由于其依赖的物理成分而对空间和光谱分辨率具有内在局限性。为了克服这些物理局限性,在本文中,我们开发了一种新型的多光谱成像方式,可以实现更高的空间和光谱分辨率。在开发的计算成像方式中,我们利用衍射镜(例如光子筛)来分散和聚焦光场,并通过改变该镜头的聚焦行为来实现测量多样性。由于衍射透镜的焦距是波长依赖性的,因此每个测量都是不同模糊光谱成分的叠加。为了从这些叠加和模糊测量结果中重建单个光谱图像,使用交替的最小化和展开,基于模型的快速重建算法是通过深层和分析的先验开发的。最后,在极端紫外线(EUV)制度中的各种观察方案下,在各种观察方案下应用了开发技术的有效性和性能。结果表明,该技术不仅提供了衍射有限的高空间分辨率,这是由衍射透镜启用的,而且还提供了解决现有技术不可能解决的近距离光谱源的能力。这项工作使高分辨率的多光谱成像具有低成本设计,用于各种应用和光谱制度。
Spectral imaging is a fundamental diagnostic technique with widespread application. Conventional spectral imaging approaches have intrinsic limitations on spatial and spectral resolutions due to the physical components they rely on. To overcome these physical limitations, in this paper, we develop a novel multi-spectral imaging modality that enables higher spatial and spectral resolutions. In the developed computational imaging modality, we exploit a diffractive lens, such as a photon sieve, for both dispersing and focusing the optical field, and achieve measurement diversity by changing the focusing behavior of this lens. Because the focal length of a diffractive lens is wavelength-dependent, each measurement is a superposition of differently blurred spectral components. To reconstruct the individual spectral images from these superimposed and blurred measurements, model-based fast reconstruction algorithms are developed with deep and analytical priors using alternating minimization and unrolling. Finally, the effectiveness and performance of the developed technique is illustrated for an application in astrophysical imaging under various observation scenarios in the extreme ultraviolet (EUV) regime. The results demonstrate that the technique provides not only diffraction-limited high spatial resolution, as enabled by diffractive lenses, but also the capability of resolving close-by spectral sources that would not otherwise be possible with the existing techniques. This work enables high resolution multi-spectral imaging with low cost designs for a variety of applications and spectral regimes.