论文标题

鬼影。 ii。使用逼真的空间随机面具进行横梁塑形

Ghost projection. II. Beam shaping using realistic spatially-random masks

论文作者

Ceddia, David, Kingston, Andrew M., Pelliccia, Daniele, Rack, Alexander, Paganin, David M.

论文摘要

空间光调制对于许多科学和工业应用都很重要。空间照明调制器和光学数据投影仪都依赖于精确配置的光学元素来塑造光束。在这里,我们探索了不需要可配置的梁成型元件的图像预测方法。由于其与计算幽灵成像的概念关系,我们将这种方法视为鬼影投影。该方法不是可配置的光束成型元件,而是横向取代单个照明掩码,例如空间随机屏幕,以创建辐射曝光的指定分布。该方法具有使用各种辐射和物质波场的投影的潜在适用性,例如硬X射线,中子,兆束,原子束和分子束。在我们以前的理论和计算研究的基础上,我们在这里试图了解该方法的某些关键实验局限性的影响,敏感性和耐受性。为了关注硬X射线的情况,我们采用了实验上获得的面膜来数字研究光子射击噪声的有害影响,在随机掩模的暴露时间中不准确以及在掩模定位中的不准确性,并适应空间不均匀的光明。了解这些因素的影响将有助于优化实验设计,并致力于实践中的幽灵投影。

Spatial light modulation is important for many scientific and industrial applications. The spatial light modulator and optical data projector both rely on precisely configurable optical elements to shape a light beam. Here we explore an image-projection approach which does not require a configurable beam-shaping element. We term this approach ghost projection on account of its conceptual relation to computational ghost imaging. Instead of a configurable beam shaping element, the method transversely displaces a single illuminated mask, such as a spatially-random screen, to create specified distributions of radiant exposure. The method has potential applicability to image projection employing a variety of radiation and matter wave fields, such as hard x rays, neutrons, muons, atomic beams and molecular beams. Building on our previous theoretical and computational studies, we here seek to understand the effects, sensitivity, and tolerance of some key experimental limitations of the method. Focusing on the case of hard x rays, we employ experimentally acquired masks to numerically study the deleterious effects of photon shot noise, inaccuracies in random-mask exposure time, and inaccuracies in mask positioning, as well as adapting to spatially non-uniform illumination. Understanding the influence of these factors will assist in optimizing experimental design and work towards achieving ghost projection in practice.

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