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Towards structural analysis of solution spaces for ill-posed discrete 1D optimisation problems

机译:不适定离散一维优化问题的解空间结构分析

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To obtain a single best-suited solution, an ill-posed global optimisation problem is regularised. Conventional regularisation, that adds to the goal function a weighed smoothing term, is theoretically justified for linear and a number of non-linear ill-posed mathematical problems. But for inverse optical problems in computer vision such regularisation is mostly heuristic and thus guarantee neither unique, nor visually valid solution. Our recent concurrent propagation algorithm forms and stores in a compact graphical form an entire solution space for an one-dimensional (1D) discrete global optimisation, being ill posed due to a multiplicity of solutions. We discuss possibilities of guiding the selection of a valid solution by structural properties of the solution space. In application to ill-posed computational stereo vision, to match human 3D perception, the regularised solutions should keep boundaries of objects producing partially occluded regions of an observed 3D scene. Experiments with real stereo pairs show that a sizeable part of such boundaries and regions can be detected by analysing the entire solution space.
机译:为了获得单个最佳解决方案,对不适定的全局优化问题进行了正则化。从理论上讲,对线性和许多非线性不适定数学问题而言,向目标函数添加加权平滑项的常规正则化是合理的。但是对于计算机视觉中的逆光学问题,这种正则化通常是启发式的,因此既不能保证唯一的解决方案,也不能保证视觉上有效的解决方案。我们最近的并发传播算法以紧凑的图形形式形成并存储了用于一维(1D)离散全局优化的整个解决方案空间,这是由于解决方案的多样性而引起的。我们讨论了通过解空间的结构属性指导选择有效解的可能性。在不适定的计算立体视觉的应用中,为了匹配人类3D感知,正则化的解决方案应保持对象的边界,这些对象的边界会产生观察到的3D场景的部分遮挡区域。真实立体对的实验表明,可以通过分析整个解决方案空间来检测此类边界和区域的较大部分。

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