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Development of a real-time spectral imaging system using in-site micro-LED-based illumination and high-speed micro-camera for endoscopic applications

机译:使用现场微LED的照明和高速微摄像机进行实时光谱成像系统,用于内窥镜应用

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We designed a compact, real-time LED-based endoscopic imaging system for the detection of various diseases including cancer. In gastrointestinal applications, conventional endoscopy cannot reliably differentiate tumor from normal tissue. Current hyperspectral imaging systems are too slow to be used for real-time endoscopic applications. We are investigating real-time spectral imaging for different tissue types. Our objective is to develop a catheter for real-time hyperspectral gastrointestinal endoscopy. The endoscope uses multiple wavelengths within UV, visible, and IR light spectra generated by a micro-LED array. We capture images with a monochrome micro camera, which is cost-effective and smaller than the current hyperspectral imagers. A wireless transceiver sends the captured images to a workstation for further processing, such as tumor detection. The spatial resolution of the system is defined by camera resolution and the distance to the object, while the number of LEDs in the multi-wavelength light source determines the spectral resolution. To investigate the properties and the limitations of our high-speed spectral imaging approach, we designed a prototype system. We conducted two experiments to measure the optimal forward voltages and lighting duration of the LEDs. These factors affect the maximum feasible imaging rate and resolution. The lighting duration of each LED can be shorter than 10 ms while producing an image with a high signal-to-noise ratio and no illumination interference. These results support the idea of using a high-speed camera and an LED-array for real-time hyperspectral endoscopic imaging.
机译:我们设计了一种紧凑,实时LED的内窥镜成像系统,用于检测包括癌症的各种疾病。在胃肠道应用中,常规内窥镜检查不能可靠地将肿瘤与正常组织区分开。目前的高光谱成像系统太慢用于用于实时内窥镜应用。我们正在研究针对不同组织类型的实时光谱成像。我们的目的是开发用于实时高光谱胃肠内窥镜检查的导管。内窥镜在UV中使用多个波长,可见和由微LED阵列产生的IR光谱。我们用单色微相机捕获图像,该图像具有成本效益且小于当前的超光栅成像器。无线收发器将捕获的图像发送到工作站以进行进一步处理,例如肿瘤检测。系统的空间分辨率由相机分辨率和到对象的距离,而多波长光源中的LED的数量确定光谱分辨率。为了调查我们的高速谱成像方法的特性和局限性,我们设计了一种原型系统。我们进行了两项实验,以测量LED的最佳正向电压和照明持续时间。这些因素影响最大可行的成像率和分辨率。每个LED的照明持续时间可以短于10ms,同时产生具有高信噪比和没有照明干扰的图像。这些结果支持使用高速相机和LED阵列进行实时高光谱内窥镜成像的想法。

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