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Variational optical flow computation in real time

机译:实时变化光流计算

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This paper investigates the usefulness of bidirectional multigrid methods for variational optical flow computations. Although these numerical schemes are among the fastest methods for solving equation systems, they are rarely applied in the field of computer vision. We demonstrate how to employ those numerical methods for the treatment of variational optical flow formulations and show that the efficiency of this approach even allows for real-time performance on standard PCs. As a representative for variational optic flow methods, we consider the recently introduced combined local-global method. It can be considered as a noise-robust generalization of the Horn and Schunck technique. We present a decoupled, as well as a coupled, version of the classical Gau/spl szlig/-Seidel solver, and we develop several multigrid implementations based on a discretization coarse grid approximation. In contrast, with standard bidirectional multigrid algorithms, we take advantage of intergrid transfer operators that allow for nondyadic grid hierarchies. As a consequence, no restrictions concerning the image size or the number of traversed levels have to be imposed. In the experimental section, we juxtapose the developed multigrid schemes and demonstrate their superior performance when compared to unidirectional multigrid methods and nonhierachical solvers. For the well-known 316/spl times/252 Yosemite sequence, we succeeded in computing the complete set of dense flow fields in three quarters of a second on a 3.06-GHz Pentium4 PC. This corresponds to a frame rate of 18 flow fields per second which outperforms the widely-used Gau/spl szlig/-Seidel method by almost three orders of magnitude.
机译:本文研究了双向多重网格方法在变化光流计算中的实用性。尽管这些数值方案是求解方程组的最快方法,但很少在计算机视觉领域中应用。我们演示了如何使用这些数值方法来处理变化的光流公式,并表明该方法的效率甚至可以在标准PC上实现实时性能。作为变分光流方法的代表,我们考虑了最近引入的组合局部全局方法。可以将其视为Horn和Schunck技术的强健噪声概括。我们介绍了经典Gau / spl szlig / -Seidel解算器的解耦和耦合版本,并且我们基于离散化粗网格近似开发了几种多网格实现。相比之下,通过标准的双向多网格算法,我们利用了允许非二元网格层次结构的网格间转移运算符。因此,不必对图像大小或遍历级别数施加任何限制。在实验部分,我们将并发的多重网格方案并列,并证明了与单向多重网格方法和非分层求解器相比,它们的优越性能。对于众所周知的316 / spl times / 252优胜美地序列,我们成功地在3.06 GHz Pentium4 PC上四分之三秒内计算出完整的密集流场。这相当于每秒18个流场的帧速率,其性能比广泛使用的Gau / spl szlig / -Seidel方法高出近三个数量级。

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