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Real-Time Intensity-Image Reconstruction for Event Cameras Using Manifold Regularisation

机译:使用歧管正规化事件摄像机的实时强度 - 图像重建

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Event cameras or neuromorphic cameras mimic the human perception system as they measure the per-pixel intensity change rather than the actual intensity level . In contrast to traditional cameras, such cameras capture new information about the scene at MHz frequency in the form of sparse events. The high temporal resolution comes at the cost of losing the familiar per-pixel intensity information. In this work we propose a variational model that accurately models the behaviour of event cameras, enabling reconstruction of intensity images with arbitrary frame rate in real-time. Our method is formulated on a per-event-basis, where we explicitly incorporate information about the asynchronous nature of events via an event manifold induced by the relative timestamps of events. In our experiments we verify that solving the variational model on the manifold produces high-quality images without explicitly estimating optical flow. This paper is an extended version of our previous work (Reinbacher et al. in British machine vision conference (BMVC), 2016) and contains additional details of the variational model, an investigation of different data terms and a quantitative evaluation of our method against competing methods as well as synthetic ground-truth data.
机译:事件摄像机或神经形态摄像机模仿人类感知系统,因为它们测量每个像素强度变化而不是实际强度水平。与传统相机相比,这种相机以稀疏事件的形式捕获有关MHz频率的关于场景的新信息。高时间分辨率以丢失熟悉的每个像素强度信息的成本为本。在这项工作中,我们提出了一种变分模型,可以准确地模拟事件摄像机的行为,使得能够实时地重建具有任意帧速率的强度图像。我们的方法是在每次事件基础上制定的,在那里我们通过事件的相对时间戳引起的事件歧管明确地结合了关于事件的异步性质的信息。在我们的实验中,我们验证求解歧管上的变分模型在不明确估计光学流程的情况下产生高质量图像。本文是我们以前的工作的扩展版本(Reinbacher等人。在英国机器视觉会议(BMVC),2016)中,包含分析模式的其他细节,对不同数据术语的调查以及我们对竞争的方法的定量评估方法以及合成地面真理数据。

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