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Multitrack Compressed Sensing for Faster Hyperspectral Imaging

机译:MultiTrict压缩传感器更快的高光谱成像

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摘要

Hyperspectral imaging (HSI) provides additional information compared to regular color imaging, making it valuable in areas such as biomedicine, materials inspection and food safety. However, HSI is challenging because of the large amount of data and long measurement times involved. Compressed sensing (CS) approaches to HSI address this, albeit subject to tradeoffs between image reconstruction accuracy, time and generalizability to different types of scenes. Here, we develop improved CS approaches for HSI, based on parallelized multitrack acquisition of multiple spectra per shot. The multitrack architecture can be paired up with either of the two compatible CS algorithms developed here: (1) a sparse recovery algorithm based on block compressed sensing and (2) an adaptive CS algorithm based on sampling in the wavelet domain. As a result, the measurement speed can be drastically increased while maintaining reconstruction speed and accuracy. The methods were validated computationally both in noiseless as well as noisy simulated measurements. Multitrack adaptive CS has a ∼10 times shorter measurement plus reconstruction time as compared to full sampling HSI without compromising reconstruction accuracy across the sample images tested. Multitrack non-adaptive CS (sparse recovery) is most robust against Poisson noise at the expense of longer reconstruction times.
机译:与常规颜色成像相比,高光谱成像(HSI)提供额外的信息,使其在生物医学,材料检验和食品安全等领域中有价值。但是,由于涉及的数据量和长测量时间,HSI是具有挑战性的。压缩传感(CS)涉及HSI地址的方法,尽管在图像重建精度,时间和不同类型场景之间的概括性之间进行权衡。在这里,我们基于每次射击的多个光谱的并行多频率采集,为HSI开发改进的CS方法。 MultiTrict架构可以与此处开发的两个兼容CS算法中的任何一个配对:(1)基于块压缩检测的稀疏恢复算法和(2)基于小波域中采样的自适应CS算法。结果,在保持重建速度和精度的同时可以大大增加测量速度。这些方法在计算上验证,无噪声以及嘈杂的模拟测量。与全抽样HSI相比,MultiTrict Adaptive CS具有截至测量和重建时间较短的重建时间,而不会影响测试的图像图像的重建精度。 MultiTrict非自适应CS(稀疏恢复)对泊松噪声的牺牲较长的重建时间最强。

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