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Efficient Wiener filtering without preconditioning

机译:无需预处理的高效维纳过滤

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We present a new approach to calculate the Wiener filter solution of general data sets. It is trivial to implement, flexible, numerically absolutely stable, and guaranteed to converge. Most importantly, it does not require an ingenious choice of preconditioner to work well. The method is capable of taking into account inhomogeneous noise distributions and arbitrary mask geometries. It iteratively builds up the signal reconstruction by means of a messenger field, introduced to mediate between the different preferred bases in which signal and noise properties can be specified most conveniently. Using cosmic microwave background (CMB) radiation data as a showcase, we demonstrate the capabilities of our scheme by computing Wiener filtered WMAP7 temperature and polarization maps at full resolution for the first time. We show how the algorithm can be modified to synthesize fluctuation maps, which, combined with the Wiener filter solution, result in unbiased constrained signal realizations, consistent with the observations. The algorithm performs well even on simulated CMB maps with Planck resolution and dynamic range.
机译:我们提出了一种计算通用数据集的维纳滤波器解决方案的新方法。它实现起来非常简单,灵活,在数值上绝对稳定并且可以保证收敛。最重要的是,它不需要巧妙地选择预处理器即可正常工作。该方法能够考虑不均匀的噪声分布和任意的掩模几何形状。它通过使者场迭代地建立信号重建,引入该信使场以在不同的优选基准之间进行调解,在该基准中可以最方便地指定信号和噪声属性。我们使用宇宙微波背景(CMB)辐射数据作为展示,通过首次以全分辨率计算经过Wiener滤波的WMAP7温度和极化图来演示我们方案的功能。我们展示了如何修改该算法以合成波动图,该波动图与维纳滤波器解决方案相结合,可以产生与观察结果一致的无约束约束信号实现。即使在具有Planck分辨率和动态范围的模拟CMB地图上,该算法也能很好地执行。

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