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DLP Hyperspectral Imaging for Surgical and Clinical Utility

机译:DLP高光谱成像在外科和临床上的应用

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摘要

We describe a novel digital light processing, DLP hyperspectral imaging system for visualizing chemical composition of in vivo tissues during surgical procedures non-invasively and at near video rate. The novelty of the DLP hyperspectral imaging system resides in (1) its ability to conform light to rapidly sweep through a series of preprogrammed spectral illuminations as simple as a set of contiguous bandpasses to any number of complex spectra, and (2) processing the reflected spectroscopic image data using unique supervised and unsupervised chemometric methods that color encode molecular content of tissue at each image detector pixel providing an optical biopsy. Spectral illumination of tissue is accomplished utilizing a DLP? based spectral illuminator incorporating a series of bandpass spectra and measuring the reflectance image with a CCD array detector. Wavelength dependent images are post processed with a multivariate least squares analysis method using known reference spectra of oxy- and deoxy-hemoglobin. Alternatively, illuminating with complex reference spectra reduces the number of spectral images required for generating chemically relevant images color encoded for relative percentage of oxyhemoglobin are collected and displayed in real time near-video rate, (3 to 4) frames per second (fps). As a proof of principle application, a kidney of an anesthetized pig was imaged before and after renal vasculature occlusion showing the clamped kidney to be 61% of the undamped kidney percentage of oxyhemoglobin. Using the "3-Shot" spectral illumination method and gathering data at (3 to 4) fps shows a non-linear exponential de-oxygenation of hemoglobin reaching steady state within 30 seconds post occlusion.
机译:我们描述了一种新型的数字光处理,DLP高光谱成像系统,用于在无创且接近视频速率的手术过程中可视化体内组织的化学成分。 DLP高光谱成像系统的新颖性在于(1)它具有使光顺应性快速扫过一系列预编程光谱照明的能力,就像一系列连续带通到任何数量的复杂光谱一样简单,以及(2)处理反射的使用独特的有监督和无监督化学计量学方法对光谱图像数据进行分析,该方法对每个图像检测器像素处的组织分子含量进行颜色编码,从而提供光学活检。组织的光谱照明是利用DLP完成的。基于光谱的照明器,结合了一系列带通光谱,并使用CCD阵列检测器测量反射率图像。与波长相关的图像使用已知的氧合和脱氧血红蛋白参考光谱,通过多元最小二乘分析方法进行后处理。或者,使用复杂的参考光谱进行照明可以减少生成化学相关图像所需的光谱图像的数量,这些图像的颜色被编码为氧合血红蛋白的相对百分比,并以实时近视频速率(每秒3至4个帧)(fps)显示。作为原理应用的证明,在麻醉的猪的肾脏在肾脏脉管系统闭塞之前和之后进行成像,显示钳制的肾脏占氧合血红蛋白的未衰减肾脏百分比的61%。使用“ 3-Shot”光谱照明方法并以(3到4)fps收集数据显示,血红蛋白的非线性指数脱氧在阻塞后30秒内达到稳态。

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