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Fast Image Reconstruction with an Event Camera

机译:使用事件摄像机进行快速图像重建

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Event cameras are powerful new sensors able to capture high dynamic range with microsecond temporal resolution and no motion blur. Their strength is detecting brightness changes (called events) rather than capturing direct brightness images; however, algorithms can be used to convert events into usable image representations for applications such as classification. Previous works rely on hand-crafted spatial and temporal smoothing techniques to reconstruct images from events. State-of-the-art video reconstruction has recently been achieved using neural networks that are large (10M parameters) and computationally expensive, requiring 30ms for a forward-pass at 640 × 480 resolution on a modern GPU. We propose a novel neural network architecture for video reconstruction from events that is smaller (38k vs. 10M parameters) and faster (10ms vs. 30ms) than state-of-the-art with minimal impact to performance.
机译:事件相机是功能强大的新型传感器,能够以微秒的时间分辨率捕获高动态范围,并且不会出现运动模糊。它们的优势在于检测亮度变化(称为事件),而不是捕获直接的亮度图像。但是,可以使用算法将事件转换为适用于分类等应用的可用图像表示。先前的作品依靠手工制作的空间和时间平滑技术来从事件中重建图像。最近,使用大型(10M参数)且计算量大的神经网络已经实现了最新的视频重建,在现代GPU上,以640×480的分辨率进行前向通行需要30ms。我们提出了一种新颖的神经网络体系结构,用于从事件中重建视频,该事件比最新技术更小(38k vs. 10M参数)和更快(10ms vs. 30ms),并且对性能的影响最小。

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