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Sparse Approximation-Based Maximum Likelihood Approach for Estimation of Radiological Source Terms

机译:基于稀疏近似的最大似然法估计放射源项

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摘要

A computationally efficient and accurate method is presented for identifying the number, intensity and location of stationary multiple radiological sources. The proposed method uniformly grids the region of interest resulting in a finite set of solutions for the source locations. The resulting problem is a sparse convex optimization problem based on -norm minimization. The solution of this convex optimization encapsulates all information needed for the estimation of source terms; the values of the nonzero elements of the solution vector approximates the source intensity, the grid points corresponding to the nonzero elements approximates the source locations, and the number of nonzero elements is the number of sources. The accuracy limited by the resolution of the grid is further improved by making use of the maximum likelihood estimation approach. The performance of sparse approximation based maximum likelihood estimation is verified using real experimental data acquired from radiological field trials in the presence of up to three point sources of gamma radiation. The numerical results show that the proposed approach efficiently and accurately identifies the source terms simultaneously, and it outperforms existing methods which have been used for stationary multiple radiological source terms estimation.
机译:提出了一种计算有效且准确的方法,用于识别固定多个放射源的数量,强度和位置。所提出的方法将感兴趣区域均匀地网格化,从而得到源位置的一组有限解。产生的问题是基于-范数最小化的稀疏凸优化问题。凸优化的解决方案封装了估计源项所需的所有信息。解向量的非零元素的值近似于光源强度,与非零元素相对应的网格点近似于光源位置,非零元素的数量即光源的数量。通过使用最大似然估计方法,可以进一步提高受网格分辨率限制的精度。在存在多达三个点辐射源的情况下,使用从放射线现场试验获得的真实实验数据验证了基于稀疏近似的最大似然估计的性能。数值结果表明,所提出的方法能够有效,准确地同时识别源项,并且优于用于固定多个放射源项估计的现有方法。

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