Tang Guoliang, Wang Zi, Liu Shijie, Li Chunlai, Wang Jianyu
Key Laboratory of Space Active Opto-Electronics Technology, Shanghai Institute of Technical Physics, Chinese Academy of Sciences, Shanghai 200083, China.
University of Chinese Academy of Sciences, Beijing 100049, China.
Sensors (Basel). 2022 Jan 21;22(3):822. doi: 10.3390/s22030822.
We propose a real-time hyperspectral video acquisition system that uses coded slits. Conventional imaging spectrometers usually have scanning mechanisms that reduce the temporal resolution or sacrifice the spatial resolution to acquire spectral information instantly. Recently, computational spectral imaging has been applied to realize high-speed or high-performance spectral imaging. However, the most current computational spectral imaging systems take a long time to reconstruct spectral data cubes from limited measurements, which limits real-time hyperspectral video acquisition. In this work, we propose a new computational spectral imaging system. We substitute the slit in a conventional scanning-based imaging spectrometer with coded slits, which can achieve the parallel acquisition of spectral data and thus an imaging speed that is several times higher. We also apply an electronically controlled translation stage to use different codes at each exposure level. The larger amount of data allows for fast reconstruction through matrix inversion. To solve the problem of a trade-off between imaging speed and image quality in high-speed spectral imaging, we analyze the noise in the system. The severe readout noise in our system is suppressed with S-matrix coding. Finally, we build a practical prototype that can acquire hyperspectral video with a high spatial resolution and a high signal-to-noise ratio at 5 Hz in real time.
我们提出了一种使用编码狭缝的实时高光谱视频采集系统。传统成像光谱仪通常具有扫描机制,这会降低时间分辨率或牺牲空间分辨率以立即获取光谱信息。最近,计算光谱成像已被应用于实现高速或高性能光谱成像。然而,当前大多数计算光谱成像系统从有限测量中重建光谱数据立方体需要很长时间,这限制了实时高光谱视频采集。在这项工作中,我们提出了一种新的计算光谱成像系统。我们用编码狭缝替代传统基于扫描的成像光谱仪中的狭缝,这可以实现光谱数据的并行采集,从而使成像速度提高几倍。我们还应用了一个电控平移台,以便在每个曝光级别使用不同的编码。大量的数据允许通过矩阵求逆进行快速重建。为了解决高速光谱成像中成像速度与图像质量之间的权衡问题,我们分析了系统中的噪声。我们系统中严重的读出噪声通过S矩阵编码得到抑制。最后,我们构建了一个实用的原型,它可以实时以5Hz的频率采集具有高空间分辨率和高信噪比的高光谱视频。