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Multi-channel beam-scanning imaging at kHz frame rates by Lissajous trajectory microscopy

机译:Lissajous轨迹显微镜在kHz帧频下进行多通道光束扫描成像

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A beam-scanning microscope based on Lissajous trajectory imaging is described for achieving streaming 2D imaging with continuous frame rates up to 1.4 kHz. The microscope utilizes two fast-scan resonant mirrors to direct the optical beam on a circuitous trajectory through the field of view. By separating the full Lissajous trajectory time-domain data into sub-trajectories (partial, undersampled trajectories) effective frame-rates much higher than the repeat time of the Lissajous trajectory are achieved with many unsampled pixels present. A model-based image reconstruction (MBIR) 3D in-painting algorithm is then used to interpolate the missing data for the unsampled pixels to recover full images. The MBIR algorithm uses a maximum a posteriori estimation with a generalized Gaussian Markov random field prior model for image interpolation. Because images are acquired using photomultiplier tubes or photodiodes, parallelization for multi-channel imaging is straightforward. Preliminary results show that when combined with the MBIR in-painting algorithm, this technique has the ability to generate kHz frame rate images across 6 total dimensions of space, time, and polarization for SHG, TPEF, and confocal reflective birefringence data on a multimodal imaging platform for biomedical imaging. The use of a multichannel data acquisition card allows for multimodal imaging with perfect image overlay. Image blur due to sample motion was also reduced by using higher frame rates.
机译:描述了一种基于李沙育轨迹成像的光束扫描显微镜,用于以高达1.4 kHz的连续帧频实现流式2D成像。显微镜利用两个快速扫描共振镜将光束引导通过视场在a回轨迹上。通过将完整的李萨如轨迹的时域数据分成子轨迹(部分,欠采样轨迹),在存在许多未采样像素的情况下,可获得比李萨如轨迹的重复时间高得多的有效帧频。然后使用基于模型的图像重建(MBIR)3D内画算法为未采样像素内插丢失的数据,以恢复完整图像。 MBIR算法使用最大后验估计和广义高斯马尔可夫随机场先验模型进行图像插值。由于使用光电倍增管或光电二极管采集图像,因此多通道成像的并行化非常简单。初步结果表明,与MBIR画中画算法结合使用时,该技术能够生成6种空间,时间和偏振总尺寸的kHz帧频图像,用于多模态成像上的SHG,TPEF和共焦反射双折射数据生物医学成像平台。多通道数据采集卡的使用可实现具有完美图像叠加的多模式成像。通过使用更高的帧速率,还可以减少由于样本运动而导致的图像模糊。

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