一种改进的动态视觉传感器可视化及其视频去噪方法

Xuemei Xie, Jiang Du, Guangming Shi, H. Hu, Wang Li
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引用次数: 6

摘要

动态视觉传感器(distributed vision sensor, DVS)是一种基于事件的相机,能够快速、低存储消耗地捕捉视觉变化。为了更好地理解DVS捕获的内容,我们需要将事件可视化。现有的方法已经实现了可视化。为了优化视觉体验,本文提出了一种信息丰富、速度快、噪声小的事件可视化框架。首先,提出了一种改进的基于人类视觉系统的重叠事件可视化方法。其次,提出了一种基于共享字典的视频去噪方法。在我们的实验中,所提出的方法在整个视频上达到了预期的目的。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
An Improved Approach for Visualizing Dynamic Vision Sensor and its Video Denoising
Dynamic vision sensor (DVS) is an event-based camera capturing the changes of vision with high speed and low storage consumption. To better understand what DVS captures, we need to visualize the events. Existing methods have realized visualization. To optimize the vision experience, this paper proposes a framework to visualize events with rich information, high speed and less noise. Firstly, we propose an improved visualization approach using overlapped events based on human vision system. Secondly, we propose a video denoising method using shared dictionaries. In our experiments, the proposed method realizes the expected purpose on the whole video.
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