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通过优化颜色编码孔径实现的快照压缩飞行时间+光谱成像

Snapshot Compressive ToF+Spectral Imaging via Optimized Color-Coded Apertures.

作者信息

Rueda-Chacon Hoover, Florez-Ospina Juan F, Lau Daniel L, Arce Gonzalo R

出版信息

IEEE Trans Pattern Anal Mach Intell. 2020 Oct;42(10):2346-2360. doi: 10.1109/TPAMI.2019.2912961. Epub 2019 Apr 23.

Abstract

Compressive multispectral imaging systems comprise a new generation of spectral imagers that capture coded projections of a scene where spectral data cubes are reconstructed computationally. Separately, time-of-flight (ToF) cameras obtain 2D range images where each pixel records the distance from the camera sensor to the target surface. The demand for these imaging modalities is rapidly increasing, and thus, there is strong interest in developing new image sensors that can simultaneously acquire multispectral-color-and-depth imagery (MS+D) using a single aperture. Work in this path has been mainly developed via RGB+D imaging. However, in RGB+D, the multispectral image is limited to three spectral channels, and the imaging system often relies on two image sensors. We recently proposed a compressive MS+D imaging device that used a digital-micromirror-device, requiring a bulky double imaging-and-relay path. To overcome the bulkiness and other difficulties of our previous imaging system, this work presents a more-compact MS+D imaging device with snapshot capabilities. It provides better spectral sensing, relying on a static color-coded-aperture (CCA) and a ToF sensor. To guarantee good quality in the recovery, we develop an optimization method for CCA based-on blue-noise-multitoning, solved via the direct-binary-search algorithm. A testbed-setup is reported along with simulated and real experiments that demonstrate the MS+D capabilities of the proposed system over static and dynamic scenes.

摘要

压缩多光谱成像系统是新一代的光谱成像仪,它捕获场景的编码投影,然后通过计算重建光谱数据立方体。另外,飞行时间(ToF)相机可获取二维距离图像,其中每个像素记录从相机传感器到目标表面的距离。对这些成像方式的需求正在迅速增长,因此,人们对开发能够使用单个孔径同时获取多光谱 - 颜色和深度图像(MS + D)的新型图像传感器有着浓厚的兴趣。在这条道路上的工作主要是通过RGB + D成像发展而来的。然而,在RGB + D中,多光谱图像仅限于三个光谱通道,并且成像系统通常依赖于两个图像传感器。我们最近提出了一种使用数字微镜器件的压缩MS + D成像设备,该设备需要庞大的双成像和中继路径。为了克服我们之前成像系统的体积庞大和其他困难,这项工作提出了一种具有快照功能的更紧凑的MS + D成像设备。它依靠静态颜色编码孔径(CCA)和ToF传感器提供更好的光谱传感。为了保证恢复质量,我们基于蓝噪声多色调开发了一种用于CCA的优化方法,并通过直接二进制搜索算法求解。报告了一个试验台设置以及模拟和实际实验,这些实验证明了所提出系统在静态和动态场景下的MS + D能力。

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