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首页> 外文期刊>Computerized Medical Imaging and Graphics: The Official Jounal of the Computerized Medical Imaging Society >Motion correction for cellular-resolution multi-photon fluorescence microscopy imaging of awake head-restrained mice using speed embedded HMM
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Motion correction for cellular-resolution multi-photon fluorescence microscopy imaging of awake head-restrained mice using speed embedded HMM

机译:使用速度嵌入式HMM对清醒的头枕小鼠进行细胞分辨率多光子荧光显微镜成像的运动校正

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摘要

Multi-photon fluorescence microscopy (MFM) captures high-resolution fluorescence image sequences and can be used for the intact brain imaging of small animals. Recently, it has been extended from anesthetized and head-stabilized mice to awake and head-restrained ones for . in vivo neurological study. In these applications, motion correction is an important pre-processing step since brain pulsation and body movement can cause motion artifact and prevent stable serial image acquisition at such high spatial resolution. This paper proposes a speed embedded Hidden Markov model (SEHMM) for motion correction in MFM imaging of awake head-restrained mice. The algorithm extends the traditional Hidden Markov model (HMM) method by embedding a motion prediction model to better estimate the state transition probability. The novelty of the method lies in using adaptive probability to estimate the linear motion, while the state-of-the-art method assumes that the highest probability is assigned to the case with no motion. In experiments we demonstrated that SEHMM is more accurate than the traditional HMM using both simulated and real MFM image sequences.
机译:多光子荧光显微镜(MFM)捕获高分辨率的荧光图像序列,可用于完整的小动物脑部成像。最近,它已从麻醉和头部稳定的小鼠扩展到清醒和头部受限的小鼠。体内神经学研究。在这些应用中,运动校正是重要的预处理步骤,因为脑部搏动和身体运动会引起运动伪影并妨碍在如此高的空间分辨率下稳定的串行图像采集。本文提出了一种速度嵌入的隐马尔可夫模型(SEHMM),用于清醒的头部受约束的小鼠的MFM成像中的运动校正。该算法通过嵌入运动预测模型来更好地估计状态转移概率,从而扩展了传统的隐马尔可夫模型(HMM)方法。该方法的新颖之处在于使用自适应概率来估计线性运动,而现有技术方法假定将最高概率分配给没有运动的情况。在实验中,我们证明了使用模拟MFM图像序列和实际MFM图像序列的SEHMM比传统HMM更加准确。

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