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Time-lapse optical flow regularization for geophysical complex phenomena monitoring

机译:延时光流正则化,用于地球物理复杂现象监测

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摘要

In this paper, we introduce a framework for the tracking of geophysical complex phenomena via time-lapse images. It includes the regularization of the derived surface motion maps time series. The proposed processing chain addresses five main challenges: undesired camera movement, missing frames, important photometric changes, weak/repetitive texture and model-free dense spatial transformations. In the proposed framework the motion maps time series are obtained via robust pre-processing steps and optical flow computing. The contribution consists of regularizing the resulting velocity and position time series to minimize a temporal closure error in a subsequent stage. This step serves to alleviate the limitations of existing methods in the context of geophysical monitoring. The temporal closure errors are formulated as linear mappings to inverse using signal priors and two formulations are defined along with illustrative cases. Related methods are discussed and extensive experimentation on simulated datasets is carried out to validate the approach and compare between the different proposed formulations and resolution schemes. Experimental results are presented on time series acquired by ground-based cameras used for the monitoring of Alpine glaciers. The algorithm is computationally efficient, even considering the quantity of processed and generated data, and is run in parallel on multiple cores for speed-up.
机译:在本文中,我们介绍了通过延时图像跟踪地球物理复杂现象的框架。它包括派生的表面运动图时间序列的正则化。拟议的处理链解决了五个主要挑战:不希望的相机移动,丢失的帧,重要的光度变化,弱/重复的纹理以及无模型的密集空间变换。在提出的框架中,运动图时间序列是通过强大的预处理步骤和光流计算获得的。该贡献包括对所得的速度和位置时间序列进行正则化,以最小化后续阶段中的时间闭合误差。在地球物理监测的背景下,这一步骤可减轻现有方法的局限性。使用信号先验将时间闭合误差表述为与逆成反比的线性映射,并定义了两种表述以及说明性情况。讨论了相关方法,并在模拟数据集上进行了广泛的实验,以验证该方法并在不同的拟议配方和解决方案之间进行比较。通过用于监测高山冰川的地面摄像机获取的时间序列,展示了实验结果。该算法即使在考虑已处理和生成的数据量的情况下,计算效率也很高,并且可以在多个内核上并行运行以提高速度。

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