论文标题

通过多功能融合深网络稳健的超分辨率深度成像

Robust super-resolution depth imaging via a multi-feature fusion deep network

论文作者

Ruget, Alice, McLaughlin, Stephen, Henderson, Robert K., Gyongy, Istvan, Halimi, Abderrahim, Leach, Jonathan

论文摘要

三维成像在有必要记录深度的成像应用中起重要作用。使用深度成像的应用数量正在迅速增加,例如,自动驾驶自动驾驶汽车和智能手机摄像机的自动对焦辅助设备。通过单光子敏感探测器(SPAD)阵列的光检测和范围(LIDAR)是一种新兴技术,可以以高框架速率获得深度图像。但是,与常规摄像机记录的强度图像相比,该技术的空间分辨率通常很低。为了增加Spad摄像头深度图像的本地分辨率,我们开发了一个专门构建的深网,以利用可以从摄像机的直方图数据中提取的多个功能。该网络是为在双模式下运行的SPAD摄像机设计的,以便在高框架速率下捕获替代的低分辨率深度和高分辨率强度图像,因此该系统不需要任何其他传感器来提供强度图像。然后,网络使用从下采样直方图提取的强度图像和多个特征来指导深度的上采样。我们的网络在广泛的信噪比和光子水平上提供了显着的图像分辨率增强和图像降解。我们将网络应用于一系列3D数据,证明了脱氧和四倍的深度分辨率增强。

Three-dimensional imaging plays an important role in imaging applications where it is necessary to record depth. The number of applications that use depth imaging is increasing rapidly, and examples include self-driving autonomous vehicles and auto-focus assist on smartphone cameras. Light detection and ranging (LIDAR) via single-photon sensitive detector (SPAD) arrays is an emerging technology that enables the acquisition of depth images at high frame rates. However, the spatial resolution of this technology is typically low in comparison to the intensity images recorded by conventional cameras. To increase the native resolution of depth images from a SPAD camera, we develop a deep network built specifically to take advantage of the multiple features that can be extracted from a camera's histogram data. The network is designed for a SPAD camera operating in a dual-mode such that it captures alternate low resolution depth and high resolution intensity images at high frame rates, thus the system does not require any additional sensor to provide intensity images. The network then uses the intensity images and multiple features extracted from downsampled histograms to guide the upsampling of the depth. Our network provides significant image resolution enhancement and image denoising across a wide range of signal-to-noise ratios and photon levels. We apply the network to a range of 3D data, demonstrating denoising and a four-fold resolution enhancement of depth.

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