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用于处理微弱和/或空间重叠的大分子衍射图样的新工具。

New processing tools for weak and/or spatially overlapped macromolecular diffraction patterns.

作者信息

Bourgeois D

机构信息

ESRF, BP 220, 38043 Grenoble CEDEX, France and LCCP, UPR 9015, IBS, 41 Avenue des Martyrs, 38027 Grenoble CEDEX 1, France.

出版信息

Acta Crystallogr D Biol Crystallogr. 1999 Oct;55(Pt 10):1733-41. doi: 10.1107/s0907444999008355.

Abstract

Tools originally developed for the treatment of weak and/or spatially overlapped time-resolved Laue patterns were extended to improve the processing of difficult monochromatic data sets. The integration program PrOW allows deconvolution of spatially overlapped spots which are usually rejected by standard packages. By using dynamically adjusted profile-fitting areas, a carefully built library of reference spots and interpolation of reference profiles, this program also provides a more accurate evaluation of weak spots. In addition, by using Wilson statistics, it allows rejection of non-redundant strong outliers such as zingers, which otherwise may badly corrupt the data. A weighting method for optimizing structure-factor amplitude differences, based on Bayesian statistics and originally applied to low signal-to-noise ratio time-resolved Laue data, is also shown to significantly improve other types of subtle amplitude differences, such as anomalous differences.

摘要

最初为处理微弱和/或空间重叠的时间分辨劳厄图案而开发的工具得到了扩展,以改进对困难单色数据集的处理。积分程序PrOW允许对通常被标准软件包拒绝的空间重叠斑点进行去卷积。通过使用动态调整的轮廓拟合区域、精心构建的参考斑点库和参考轮廓的插值,该程序还能对微弱斑点进行更准确的评估。此外,通过使用威尔逊统计,它可以剔除诸如尖峰等非冗余强异常值,否则这些异常值可能会严重破坏数据。一种基于贝叶斯统计、最初应用于低信噪比时间分辨劳厄数据的优化结构因子振幅差异的加权方法,也被证明能显著改善其他类型的细微振幅差异,如反常差异。

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