Event-Based Synthetic Aperture Imaging With a Hybrid Network
Xiang Zhang, Wei Liao, Lei Yu, Wen Yang, Gui-Song Xia
摘要
Synthetic aperture imaging (SAI) is able to achieve the see through effect by blurring out the off-focus foreground occlusions and reconstructing the in-focus occluded targets from multi-view images. However, very dense occlusions and extreme lighting conditions may bring significant disturbances to the SAI based on conventional frame-based cameras, leading to performance degeneration. To address these problems, we propose a novel SAI system based on the event camera which can produce asynchronous events with extremely low latency and high dynamic range. Thus, it can eliminate the interference of dense occlusions by measuring with almost continuous views, and simultaneously tackle the over/under exposure problems. To reconstruct the occluded targets, we propose a hybrid encoder-decoder network composed of spiking neural networks (SNNs) and convolutional neural networks (CNNs). In the hybrid network, the spatiotemporal information of the collected events is first encoded by SNN layers, and then transformed to the visual image of the occluded targets by a style-transfer CNN decoder. Through experiments, the proposed method shows remarkable performance in dealing with very dense occlusions and extreme lighting conditions, and high quality visual images can be reconstructed using pure event data.
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引用它的顶会 Paper16
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- Generalizing Event-Based Motion Deblurring in Real-World ScenariosXiang Zhang, Lei Yu, Wen Yang, Jianzhuang Liu 等ICCV 2023 · 被引用 35 次
- E2PNet: Event to Point Cloud Registration with Spatio-Temporal Representation LearningXiuhong Lin, Changjie Qiu, Zhipeng Cai, Siqi Shen 等NeurIPS 2023 · 被引用 18 次
- Synthetic Aperture Imaging with Events and FramesWei Liao, Xiang Zhang, Lei Yu, Shijie Lin 等CVPR 2022 · 被引用 12 次
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