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Similarity Queries for Temporal Toxicogenomic Expression Profiles

机译:时间性毒基因组表达谱的相似性查询

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摘要

We present an approach for answering similarity queries about gene expression time series that is motivated by the task of characterizing the potential toxicity of various chemicals. Our approach involves two key aspects. First, our method employs a novel alignment algorithm based on time warping. Our time warping algorithm has several advantages over previous approaches. It allows the user to impose fairly strong biases on the form that the alignments can take, and it permits a type of local alignment in which the entirety of only one series has to be aligned. Second, our method employs a relaxed spline interpolation to predict expression responses for unmeasured time points, such that the spline does not necessarily exactly fit every observed point. We evaluate our approach using expression time series from the Edge toxicology database. Our experiments show the value of using spline representations for sparse time series. More significantly, they show that our time warping method provides more accurate alignments and classifications than previous standard alignment methods for time series.
机译:我们提出一种方法来回答有关基因表达时间序列的相似性查询,该方法是由表征各种化学品的潜在毒性的任务所激发的。我们的方法涉及两个关键方面。首先,我们的方法采用了一种基于时间扭曲的新颖对齐算法。与以前的方法相比,我们的时间规整算法具有多个优点。它允许用户在对齐方式可以采用的形式上施加相当大的偏见,并且允许一种局部对齐方式,其中仅一个系列的整体必须对齐。其次,我们的方法采用松弛样条插值法来预测未测量时间点的表达响应,从而使样条不一定完全适合每个观察点。我们使用Edge毒理学数据库中的表达时间序列评估我们的方法。我们的实验表明,对于稀疏时间序列,使用样条曲线表示法很有价值。更重要的是,它们表明我们的时间扭曲方法比以前的时间序列标准对齐方法提供了更准确的对齐和分类。

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