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Bayesian hierarchical methods to interpret the (13)C-octanoic acid breath test for gastric emptying.

机译:用于解释胃排空的(13)C-辛酸呼气试验的贝叶斯分级方法。

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摘要

The (13)C-octanoic acid breath test is a convenient method for assessing gastric emptying (GE). Success depends on obtaining a well-characterized time profile of the excretion of label in breath, which may not be the case if GE is delayed.To use Bayesian techniques in conjunction with hierarchical modelling as a method to increase the success of the modelling process.Retrospective analysis of 164 individual breath tests using the WinBUGS program. The approach was tested by analysing the complete dataset simultaneously, and also as individual studies.The time required for Bayesian modelling was comparable with that needed for the usual methods. The results obtained were almost identical to those obtained from conventional modelling for well-behaved breath tests, but much more realistic in cases where the experimental data was poor, or when GE was delayed.The use of Bayesian estimation of the parameters of the (13)C-octanoic acid breath test is demonstrated. By adopting a hierarchical model, realistic values for the lag phase and half-emptying time were obtained in situations when conventional parameter estimation failed. This is particularly relevant when GE is unexpectedly delayed. We recommend that WinBUGS become the method of choice for analysing breath test data.
机译:(13)C-辛酸呼气试验是评估胃排空(GE)的便捷方法。成功取决于获得呼吸中标签排泄的良好表征的时间曲线,如果GE延迟,则情况并非如此。将贝叶斯技术与分层建模结合使用以增加建模过程的成功率。使用WinBUGS程序对164次个人呼气测验进行回顾性分析。通过同时分析整个数据集以及作为单独的研究来测试该方法。贝叶斯建模所需的时间与常规方法所需的时间相当。所得结果与行为良好的呼气试验的常规建模结果几乎相同,但在实验数据较差或GE延迟的情况下更为现实。使用贝叶斯估计参数(13进行了C-辛酸呼气试验。通过采用分层模型,可以在常规参数估计失败的情况下获得滞后阶段和半空时间的实际值。当GE意外延迟时,这一点尤其重要。我们建议WinBUGS成为分析呼气测试数据的首选方法。

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