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A Compact High-Speed Image-Based Method for Measuring the Longitudinal Motion of Living Tissues

机译:基于紧凑的高速图像的测量方法测量活组织的纵向运动

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摘要

Intraoperative imaging of living tissue at the cell level by endomicroscopy might help surgeons optimize surgical procedures and provide individualized treatments. However, the resolution of the microscopic image is limited by the motion of living tissue caused by heartbeat and respiration. An active motion compensation (AMC) strategy has been recognized as an effective way to reduce, or even eliminate, the influence of tissue movement for intravital fluorescence microscopy (IVM). To realize the AMC system, a high-speed sensor for measuring the motion of tissues is needed. At present, state-of-the-art commercialized displacement sensors are not suitable to apply in minimally invasive imaging instruments to measure the motion of living tissues because of the size problem, range of measurement or the update rate. In this study, a compact high-speed image-based method for measuring the longitudinal motion of living tissues is proposed. The complexity of the proposed method is the same as that of the traditional wide-field fluorescent microscopy (WFFM) system, which makes it easy to be miniaturized and integrated into a minimally invasive imaging instrument. Experimental results reveal that the maximum indication error, range of measurement and the sensitivity of the laboratory-built experimental prototype is 150 μm, 6 and −211.46 respectively. Experimental results indicate that the proposed optical method is expected to be used in minimally invasive imaging instruments to build an AMC system.
机译:通过端粒仪检查细胞水平的活组织的术中成像可以帮助外科医生优化外科手术并提供个体化治疗。然而,显微图像的分辨率受到心跳和呼吸引起的活组织的运动的限制。主动运动补偿(AMC)策略已被认为是减少植入物荧光显微镜(IVM)组织运动对组织运动的有效途径的有效方法。为了实现AMC系统,需要用于测量组织运动的高速传感器。目前,最先进的商业化位移传感器不适用于在微创成像仪器中应用,以测量由于尺寸问题,测量范围或更新速率的活组织的运动。在该研究中,提出了一种用于测量活组织纵向运动的紧凑高速图像的方法。所提出的方法的复杂性与传统的广场荧光显微镜(WFFM)系统的复杂性相同,这使得易于小型化并集成到微创成像仪器中。实验结果表明,最大指示误差,测量范围和实验室建造的实验原型的灵敏度分别为150μm,6和-211.46。实验结果表明,预期所提出的光学方法将用于制造AMC系统的微创成像仪器。

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