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Inferential structure determination

机译:推理结构确定

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Macromolecular structures calculated from nuclear magnetic resonance data are not fully determined by experimental data but depend on subjective choices in data treatment and parameter settings. This makes it difficult to objectively judge the precision of the structures. We used Bayesian inference to derive a probability distribution that represents the unknown structure and its precision. This probability distribution also determines additional unknowns, such as theory parameters, that previously had to be chosen empirically. We implemented this approach by using Markov chain, Monte Carlo techniques. Our method provides an objective figure of merit and improves structural quality.
机译:从核磁共振数据计算出的大分子结构不能完全由实验数据确定,而是取决于数据处理和参数设置中的主观选择。这使得难以客观地判断结构的精度。我们使用贝叶斯推理来得出表示未知结构及其精度的概率分布。此概率分布还确定了以前必须凭经验选择的其他未知数,例如理论参数。我们通过使用马尔可夫链,蒙特卡洛技术实现了这种方法。我们的方法可提供客观的品质因数并提高结构质量。

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