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A comprehensive performance evaluation on the prediction results of existing cooperative transcription factors identification algorithms

机译:现有协同转录因子识别算法预测结果的综合性能评估

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摘要

BackgroundEukaryotic transcriptional regulation is known to be highly connected through the networks of cooperative transcription factors (TFs). Measuring the cooperativity of TFs is helpful for understanding the biological relevance of these TFs in regulating genes. The recent advances in computational techniques led to various predictions of cooperative TF pairs in yeast. As each algorithm integrated different data resources and was developed based on different rationales, it possessed its own merit and claimed outperforming others. However, the claim was prone to subjectivity because each algorithm compared with only a few other algorithms and only used a small set of performance indices for comparison. This motivated us to propose a series of indices to objectively evaluate the prediction performance of existing algorithms. And based on the proposed performance indices, we conducted a comprehensive performance evaluation.
机译:背景技术已知真核转录调节通过合作转录因子(TF)的网络高度连接。测量TF的协同作用有助于了解这些TF在调节基因中的生物学相关性。计算技术的最新进展导致了酵母中协同TF对的各种预测。由于每种算法都集成了不同的数据资源,并且是根据不同的原理开发的,因此具有自己的优点,并声称优于其他算法。但是,该主张倾向于主观性,因为每种算法仅与其他几种算法进行比较,并且仅使用少量性能指标进行比较。这促使我们提出了一系列指标,以客观地评估现有算法的预测性能。根据提出的绩效指标,我们进行了全面的绩效评估。

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