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Threshold extraction in metabolite concentration data.

机译:代谢物浓度数据中的阈值提取。

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MOTIVATION: Continued development of analytical techniques based on gas chromatography and mass spectrometry now facilitates the generation of larger sets of metabolite concentration data. An important step towards the understanding of metabolite dynamics is the recognition of stable states where metabolite concentrations exhibit a simple behaviour. Such states can be characterized through the identification of significant thresholds in the concentrations. But general techniques for finding discretization thresholds in continuous data prove to be practically insufficient for detecting states due to the weak conditional dependences in concentration data. RESULTS: We introduce a method of recognizing states in the framework of decision tree induction. It is based upon a global analysis of decision forests where stability and quality are evaluated. It leads to the detection of thresholds that are both comprehensible and robust. Applied to metabolite concentration data, this method has led to the discoveryof hidden states in the corresponding variables. Some of these reflect known properties of the biological experiments, and others point to putative new states. AVAILABILITY: An implementation of this approach can be obtained from the authors upon request.
机译:动机:继续开发基于气相色谱和质谱分析技术的方法,现在有助于生成更大的代谢物浓度数据集。理解代谢物动力学的重要一步是识别代谢物浓度表现出简单行为的稳定状态。可以通过确定浓度中的重要阈值来表征这些状态。但是,由于浓度数据中的条件依赖性较弱,在连续数据中查找离散阈值的通用技术实际上不足以检测状态。结果:我们引入了一种在决策树归纳框架下的状态识别方法。它基于对决策林的全局分析,在该分析中评估了稳定性和质量。它导致可理解且可靠的阈值检测。应用于代谢物浓度数据时,该方法导致在相应变量中发现隐藏状态。其中一些反映了生物学实验的已知特性,而另一些则指向了假定的新状态。可用性:可应要求从作者那里获得此方法的实现。

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