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Simulated annealing, acceleration techniques, and image restoration

机译:模拟退火,加速技术和图像还原

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Typically, the linear image restoration problem is an ill-conditioned, underdetermined inverse problem. Here, stabilization is achieved via the introduction of a first-order smoothness constraint which allows the preservation of edges and leads to the minimization of a nonconvex functional. In order to carry through this optimization task, we use stochastic relaxation with annealing. We prefer the Metropolis dynamics to the popular, but computationally much more expensive, Gibbs sampler. Still, Metropolis-type annealing algorithms are also widely reported to exhibit a low convergence rate. Their finite-time behavior is outlined and we investigate some inexpensive acceleration techniques that do not alter their theoretical convergence properties; namely, restriction of the state space to a locally bounded image space and increasing concave transform of the cost functional. Successful experiments about space-variant restoration of simulated synthetic aperture imaging data illustrate the performance of the resulting class of algorithms and show significant benefits in terms of convergence speed.
机译:通常,线性图像恢复问题是病态的,不确定的逆问题。在此,通过引入一阶平滑约束来实现稳定化,该平滑约束允许保留边缘并导致非凸函数最小化。为了完成此优化任务,我们使用了带有退火的随机松弛。我们更喜欢Metropolis动力学,而不是流行的但在计算上更昂贵的Gibbs采样器。尽管如此,Metropolis型退火算法也被广泛报道为具有较低的收敛速度。概述了它们的有限时间行为,我们研究了一些不改变其理论收敛性的廉价加速技术。即,将状态空间限制为局部有界的图像空间,并增加成本函数的凹面变换。关于模拟合成孔径成像数据的空间变量恢复的成功实验说明了所得算法类别的性能,并在收敛速度方面显示出显着优势。

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