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用于混合事件-帧相机的异步线性滤波器架构

An Asynchronous Linear Filter Architecture for Hybrid Event-Frame Cameras.

作者信息

Wang Ziwei, Ng Yonhon, Scheerlinck Cedric, Mahony Robert

出版信息

IEEE Trans Pattern Anal Mach Intell. 2024 Feb;46(2):695-711. doi: 10.1109/TPAMI.2023.3311534. Epub 2024 Jan 8.

Abstract

Event cameras are ideally suited to capture High Dynamic Range (HDR) visual information without blur but provide poor imaging capability for static or slowly varying scenes. Conversely, conventional image sensors measure absolute intensity of slowly changing scenes effectively but do poorly on HDR or quickly changing scenes. In this paper, we present an asynchronous linear filter architecture, fusing event and frame camera data, for HDR video reconstruction and spatial convolution that exploits the advantages of both sensor modalities. The key idea is the introduction of a state that directly encodes the integrated or convolved image information and that is updated asynchronously as each event or each frame arrives from the camera. The state can be read-off as-often-as and whenever required to feed into subsequent vision modules for real-time robotic systems. Our experimental results are evaluated on both publicly available datasets with challenging lighting conditions and fast motions, along with a new dataset with HDR reference that we provide. The proposed AKF pipeline outperforms other state-of-the-art methods in both absolute intensity error (69.4% reduction) and image similarity indexes (average 35.5% improvement). We also demonstrate the integration of image convolution with linear spatial kernels Gaussian, Sobel, and Laplacian as an application of our architecture.

摘要

事件相机非常适合捕捉高动态范围(HDR)视觉信息且不会产生模糊,但对于静态或变化缓慢的场景,其成像能力较差。相反,传统图像传感器能有效测量变化缓慢场景的绝对强度,但在HDR或快速变化场景下表现不佳。在本文中,我们提出了一种异步线性滤波器架构,融合事件相机和帧相机数据,用于HDR视频重建和空间卷积,利用了两种传感器模式的优势。关键思想是引入一种状态,该状态直接对积分或卷积后的图像信息进行编码,并在每个事件或每一帧从相机到达时异步更新。该状态可以根据需要随时读取,以输入到实时机器人系统的后续视觉模块中。我们的实验结果在具有挑战性的光照条件和快速运动的公开可用数据集以及我们提供的具有HDR参考的新数据集中进行了评估。所提出的AKF管道在绝对强度误差(降低69.4%)和图像相似性指标(平均提高35.5%)方面均优于其他现有方法。我们还展示了将图像卷积与高斯、索贝尔和拉普拉斯线性空间核相结合,作为我们架构的一种应用。

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