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Real time Megapixel Multispectral Bioimaging

机译:实时百万像素多光谱生物成像

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摘要

Spectral imaging involves capturing images at multiple wavelengths resulting in a data cube (x, y, X) that allows materials to be identified by its spectral signature. While hyperspectral imagers can provide high spectral resolution, they also have major drawbacks such as cost, size, and the copious amounts of data in the image cube. Typically, the complete hyperspectral data cube provides little additional information compared to only 3-8 discrete (multiwavelength) imaging bands. We present two new approaches and related technologies where we are able to acquire spectral imaging data stacks quickly and cost-effectively. Our two spectral imaging systems represent different approaches integrated with standard CCD and CMOS imagers: sequential rotating filter wheels (RFWs) and lithographically patterned dichroic filter arrays (DFAs). The RFW approach offers the ability for rapid configuration of a spectral system, and a whole new level of self-contained image acquisition, processing and on-board display. The DFA approach offers the potential for ultra compact imagers with acquisition of images of multiple wavelengths simultaneously, while still allowing for processing and display steps to be built into the camera. Both approaches lend themselves production of multi-wavelength/spectral imaging systems with differing features and advantages.
机译:光谱成像涉及捕获多个波长的图像,从而产生一个数据立方体(x,y,X),该数据立方体可以通过其光谱特征来识别材料。尽管高光谱成像仪可以提供高光谱分辨率,但它们也具有主要缺点,例如成本,尺寸和图像立方体中的大量数据。通常,与仅3-8个离散(多波长)成像带相比,完整的高光谱数据立方体提供的附加信息很少。我们提出了两种新方法和相关技术,使我们能够快速,经济高效地获取光谱成像数据堆栈。我们的两个光谱成像系统代表了与标准CCD和CMOS成像器集成的不同方法:顺序旋转滤光片轮(RFW)和光刻图案化的二向色滤光片阵列(DFA)。 RFW方法提供了快速配置光谱系统的能力,并提供了全新的自包含图像采集,处理和板载显示功能。 DFA方法为超紧凑型成像仪提供了潜力,可以同时采集多个波长的图像,同时仍允许在相机中内置处理和显示步骤。两种方法都适合生产具有不同特征和优点的多波长/光谱成像系统。

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