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A Bayesian approach to reconstruction from incomplete projections of a multiple object 3D domain

机译:从多对象3D域的不完整投影重建的贝叶斯方法

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摘要

An estimation approach is described for three-dimensional reconstruction from line integral projections using incomplete and very noisy data. Generalized cylinders parameterized by stochastic dynamic models are used to represent prior knowledge about the properties of objects of interest in the probed domain. The object models, a statistical measurement model, and the maximum a posteriori probability performance criterion are combined to reformulate the reconstruction problem as a computationally challenging nonlinear estimation problem. For computational feasibility, a suboptimal hierarchical algorithm is described whose individual steps are locally optimal and are combined to satisfy a global optimality criterion. The formulation and algorithm are restricted to objects whose center axis is a single-valued function of a fixed spatial coordinate. Simulation examples demonstrate accurate reconstructions with as few as four views in a 135 degrees sector, at an average signal-to-noise ratio of 3.3.
机译:描述了一种使用不完整且噪声很大的数据从线积分投影进行三维重建的估算方法。由随机动态模型参数化的广义圆柱体用于表示有关探测域中目标对象的属性的先验知识。将对象模型,统计测量模型和最大后验概率性能标准组合在一起,将重构问题重新表述为具有计算挑战性的非线性估计问题。为了计算的可行性,描述了一个次优的分层算法,该算法的各个步骤是局部最优的,并且组合起来满足全局最优性标准。该公式和算法仅限于其中心轴是固定空间坐标的单值函数的对象。仿真示例演示了在135度扇区中具有最少四个视图的精确重构,平均信噪比为3.3。

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