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Adaptive vs. Non-Adaptive Strategies for the Computation of Optical Flow

机译:光流计算的自适应与非自适应策略

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摘要

Confident adaptive algorithms are described, evaluated, and compared with other algorithms that implement the estimation of motion. A Galerkin finite element adaptive approach is described for computing optical flow, which uses an adaptive triangular mesh in which the resolution increases where motion is found to occur. The mesh facilitates a reduction in computational effort by enabling processing to focus on particular objects of interest in a scene. Compared with other state-of-the-art methods in the literature our adaptive methods show only motion where main movement is known to occur, indicating a methodological improvement. The mesh refinement, based on detected motion, gives an alternative to methods reported in the literature, where the adaptation is usually based on a gradient intensity measure. A confidence is calculated for the detected motion and if this measure passes the threshold then the motion is used in the adaptive mesh refinement process. The idea of using the reliability hypothesis test is straightforward. The incorporation of the confidence serves the purpose of increasing the optical flow determination reliability. Generally, the confident flow seems most consistent, accurate and efficient, and focuses on the main moving objects within the image.
机译:对自信的自适应算法进行了描述,评估,并与实现运动估计的其他算法进行了比较。描述了一种用于计算光流的Galerkin有限元自适应方法,该方法使用了自适应三角网格,其中发现运动发生时分辨率会提高。网格通过使处理专注于场景中特定的特定对象,从而有助于减少计算量。与文献中的其他最新方法相比,我们的自适应方法仅显示已知发生主运动的运动,这表明该方法有所改进。基于检测到的运动的网格细化为文献中报道的方法提供了替代方法,在文献中,自适应方法通常基于梯度强度测量。计算检测到的运动的置信度,如果此度量值超过阈值,则在自适应网格细化过程中使用该运动。使用可靠性假设检验的想法很简单。引入置信度的目的在于提高光流确定可靠性。通常,置信流似乎是最一致,准确和高效的,并且专注于图像中的主要移动对象。

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