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Subtle motifs: defining the limits of motif finding algorithms.

机译:细微的图案:定义图案查找算法的限制。

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Motivation: What constitutes a subtle motif? Intuitively, it is a motif that is almost indistinguishable, in the statistical sense, from random motifs. This question has important practical consequences: consider, for example, a biologist that is generating a sample of upstream regulatory sequences with the goal of finding a regulatory pattern that is shared by these sequences. If the sequences are too short then one risks losing some of the regulatory patterns that are located further upstream. Conversely, if the sequences are too long, the motif becomes too subtle and one is then likely to encounter random motifs which are at least as significant statistically as the regulatory pattern itself. In practical terms one would like to recognize the sequence length threshold, or the twilight zone, beyond which the motifs are in some sense too subtle. Results: The paper defines the motif twilight zone where every motif finding algorithm would be exposed to random motifs which are as significant as the one which is sought. We also propose an objective tool for evaluating the performance of subtle motif finding algorithms. Finally we apply these tools to evaluate the success of our MULTIPROFILER algorithm to detect subtle motifs. Contact: keich
机译:动机:什么构成微妙的主题?从直觉上讲,从统计学的角度来看,它是一个与随机图案几乎无法区分的图案。这个问题具有重要的实际后果:例如,考虑一位生物学家正在生成上游调控序列的样本,目的是寻找这些序列共有的调控模式。如果序列太短,则可能会失去一些位于更上游的调控模式。相反,如果序列太长,则基序变得太微妙,然后人们可能会遇到随机基序,这些基序在统计学上至少与调节模式本身一样重要。实际上,人们希望识别出序列长度阈值或暮光区,在某些意义上,该阈值或阈值太微妙。结果:本文定义了图案暮光区,其中每个图案发现算法都将暴露于与所寻找的图案一样重要的随机图案中。我们还提出了一种客观的工具,用于评估微妙的主题查找算法的性能。最后,我们使用这些工具来评估MULTIPROFILER算法成功检测细微的图案。联系人︰keich

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