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Biologically inspired imaging sensors for multi-spectral and polarization imagery

机译:受生物启发的成像传感器,用于多光谱和偏振成像

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Multi-spectral and polarization imaging have enabled and exploited a wide range of applications, from remote sensing to biomedical applications such as early cancer detection for image-guided surgery. However, state-of-the-art multispectral and polarization cameras are still based on conventional advances in optics and integrated circuits, yielding bulky form factors and poor signal reconstruction. Thus, these technologies have failed to be adopted as research or clinical imaging tools. Nature is full of examples of animals that take advantage of multi-spectral and polarization phenomena to gain an evolutionary advantage. For example, elegant low-power and compact biological visual systems-capable of multi-spectral and polarization imaging surpassing any man-made imaging system-can be found in the compound eyes of many arthropods. Here, we demonstrate radically novel, multi-spectral and polarization imaging sensors that function on the same fundamental principles as do the ommatidia of the mantis shrimp. Our bio-inspired imaging systems combine vertically stacked photodiodes, for single-pixel trichromatic vision, with an array of pixelated polarization filters, resulting in compact and low-power architectures. Our single-chip imager comprises of 1280-by-720 pixels, yielding a 62 dB and 48 dB dynamic range and signal-to-noise ratio, respectively, and operates at a maximum frame rate of 24 fps. This topology inherently co-registers in time and space the different spectral and polarization channels. This novel and ergonomic technology is enabling real-time in situ underwater polarization imaging as well as applications in biomedical fields.
机译:从遥感到生物医学应用(例如用于图像引导手术的早期癌症检测),多光谱和偏振成像已启用并开发了广泛的应用。然而,最先进的多光谱和偏振相机仍然基于光学和集成电路方面的常规进步,从而导致体积大的外形尺寸和不良的信号重建。因此,这些技术未能被用作研究或临床成像工具。大自然充满了利用多光谱和极化现象获得进化优势的动物实例。例如,在许多节肢动物的复眼中,可以找到优雅的低功率,紧凑的生物视觉系统,该系统具有超过任何人造成像系统的多光谱和偏振成像能力。在这里,我们演示了根本新颖的多光谱和偏振成像传感器,这些传感器的功能与螳螂虾的Omatidia一样,具有相同的基本原理。我们的受生物启发的成像系统将垂直堆叠的光电二极管(用于单像素三色视觉)与像素化偏振滤光片阵列结合在一起,从而形成了紧凑的低功耗架构。我们的单芯片成像器包含1280 x 720像素,分别产生62 dB和48 dB的动态范围和信噪比,并以24 fps的最大帧速率运行。这种拓扑结构固有地在时间和空间上对不同的光谱和偏振通道进行配准。这项符合人体工程学的新颖技术可实现实时原位水下极化成像以及在生物医学领域中的应用。

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