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Multichannel correlation improves the noise tolerance of real-time hyperspectral microimage mosaicking

机译:多通道相关性提高了实时高光谱显微图像拼接的噪声容忍度

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摘要

Live-subject microscopies, including microendoscopy and other related technologies, offer promise for basic biology research as well as the optical biopsy of disease in the clinic. However, cellular resolution generally comes with the trade-off of a microscopic field-of-view. Microimage mosaicking enables stitching many small scenes together to aid visualization, quantitative interpretation, and mapping of microscale features, for example, to guide surgical intervention. The development of hyperspectral and multispectral systems for biomedical applications provides motivation for adapting mosaicking algorithms to process a number of simultaneous spectral channels. We present an algorithm that mosaics multichannel video by correlating channels of consecutive frames as a basis for efficiently calculating image alignments. We characterize the noise tolerance of the algorithm by using simulated video with known ground-truth alignments to quantify mosaicking accuracy and speed, showing that multiplexed molecular imaging enhances mosaic accuracy by leveraging observations of distinct molecular constituents to inform frame alignment. A simple mathematical model is introduced to characterize the noise suppression provided by a given group of spectral channels, thus predicting the performance of selected subsets of data channels in order to balance mosaic computation accuracy and speed. The characteristic noise tolerance of a given number of channels is shown to improve through selection of an optimal subset of channels that maximizes this model. We also demonstrate that the multichannel algorithm produces higher quality mosaics than the analogous single-channel methods in an empirical test case. To compensate for the increased data rate of hyperspectral video compared to single-channel systems, we employ parallel processing via GPUs to alleviate computational bottlenecks and to achieve real-time mosaicking even for video-rate multichannel systems anticipated in the future. This implementation paves the way for real-time multichannel mosaicking to accompany next-generation hyperspectral and multispectral video microscopy.
机译:活体显微检查,包括显微内窥镜检查和其他相关技术,为基础生物学研究以及临床疾病的光学活检提供了希望。但是,细胞分辨率通常伴随着微观视野的权衡。微图像镶嵌技术可将许多小场景缝合在一起,以帮助可视化,定量解释和绘制微尺度特征,例如,以指导手术干预。用于生物医学应用的高光谱和多光谱系统的发展为调整镶嵌算法以处理多个同时光谱通道提供了动力。我们提出了一种通过关联连续帧的通道来拼接多通道视频的算法,以此作为有效计算图像对齐方式的基础。我们通过使用具有已知地面对实线对准的模拟视频来量化镶嵌精度和速度来表征算法的噪声容忍度,这表明通过利用对不同分子成分的观察来告知帧对准,多路复用分子成像可以提高镶嵌精度。引入了一个简单的数学模型来表征给定的一组频谱通道所提供的噪声抑制,从而预测数据通道所选子集的性能,从而平衡镶嵌计算的准确性和速度。通过选择使该模型最大化的最优通道子集,可以改善给定通道数量的特征噪声容忍度。我们还证明,在经验测试案例中,与类似的单通道方法相比,多通道算法产生的马赛克质量更高。为了补偿与单通道系统相比高光谱视频数据速率的提高,即使对于未来预期的视频速率多通道系统,我们也通过GPU进行并行处理,以缓解计算瓶颈并实现实时镶嵌。该实现为实时多通道镶嵌技术铺平了道路,以陪伴下一代高光谱和多光谱视频显微镜。

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