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首页> 外文期刊>ACM Transactions on Graphics >End-to-end Learned, Optically Coded Super-resolution SPAD Camera
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End-to-end Learned, Optically Coded Super-resolution SPAD Camera

机译:端对端学习型光学编码超分辨率SPAD摄像机

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摘要

Single Photon Avalanche Photodiodes (SPADs) have recently received a lot of attention in imaging and vision applications due to their excellent performance in low-light conditions, as well as their ultra-high temporal resolution. Unfortunately, like many evolving sensor technologies, image sensors built around SPAD technology currently suffer from a low pixel count. In this work, we investigate a simple, low-cost, and compact optical coding camera design that supports high-resolution image reconstructions from raw measurements with low pixel counts. We demonstrate this approach for regular intensity imaging, depth imaging, as well transient imaging. Our method uses an end-to-end framework to simultaneously optimize the optical design and a reconstruction network for obtaining super-resolved images from raw measurements. The optical design space is that of an engineered point spread function (implemented with diffractive optics), which can be considered an optimized anti-aliasing filter to preserve as much high-resolution information as possible despite imaging with a low pixel count, low fill-factor SPAD array. We further investigate a deep network for reconstruction. The effectiveness of this joint design and reconstruction approach is demonstrated for a range of different applications, including high-speed imaging, and time of flight depth imaging, as well as transient imaging. While our work specifically focuses on low-resolution SPAD sensors, similar approaches should prove effective for other emerging image sensor technologies with low pixel counts and low fill-factors.
机译:单光子雪崩光电二极管(SPAD)由于其在弱光条件下的出色性能以及超高的时间分辨率,最近在成像和视觉应用中受到了广泛关注。不幸的是,像许多不断发展的传感器技术一样,基于SPAD技术构建的图像传感器目前像素数很少。在这项工作中,我们研究了一种简单,低成本,紧凑的光学编码相机设计,该设计支持从具有低像素数的原始测量中重建高分辨率图像。我们演示了这种用于常规强度成像,深度成像以及瞬态成像的方法。我们的方法使用端到端框架同时优化光学设计和重建网络,以便从原始测量中获得超分辨图像。光学设计空间是工程设计的点扩散函数(由衍射光学器件实现),可以将其视为优化的抗混叠滤波器,尽管像素数少,填充率低,但可以保留尽可能多的高分辨率信息。因子SPAD数组。我们进一步研究了用于重建的深层网络。这种联合设计和重建方法的有效性在一系列不同的应用中得到了证明,包括高速成像,飞行时间深度成像以及瞬态成像。虽然我们的工作专门针对低分辨率SPAD传感器,但类似的方法应被证明对其他新兴的像素数少且填充因子低的图像传感器技术有效。

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