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POSSUM: a bioinformatics toolkit for generating numerical sequence feature descriptors based on PSSM profiles

机译:possum:基于PSSM配置文件生成数字序列特征描述符的生物信息学工具包

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A Summary: Evolutionary information in the form of a Position-Specific Scoring Matrix (PSSM) is a widely used and highly informative representation of protein sequences. Accordingly, PSSM-based feature descriptors have been successfully applied to improve the performance of various predictors of protein attributes. Even though a number of algorithms have been proposed in previous studies, there is currently no universal web server or toolkit available for generating this wide variety of descriptors. Here, we present POSSUM ( Position-Specific Scoring matrix-based feature generator for machine learning), a versatile toolkit with an online web server that can generate 21 types of PSSM-based feature descriptors, thereby addressing a crucial need for bioinformaticians and computational biologists. We envisage that this comprehensive toolkit will be widely used as a powerful tool to facilitate feature extraction, selection, and benchmarking of machine learning-based models, thereby contributing to a more effective analysis and modeling pipeline for bioinformatics research.
机译:概述:位置特异性评分矩阵(PSSM)形式的进化信息是蛋白质序列的广泛使用和高度信息的表示。因此,已成功地应用于基于PSSM的特征描述符以改善蛋白质属性的各种预测器的性能。尽管在先前的研究中提出了许多算法,但目前没有可用于生成这种多种描述符的通用Web服务器或工具包。在这里,我们呈现POSSUM(基于位置的基于评分矩阵的特征生成器,用于机器学习),具有在线Web服务器的多功能工具包,可以生成21种基于PSSM的特征描述符,从而解决对生物信息管理员和计算生物学家的关键需求。我们设想,这种全面的工具包将被广泛用作能力的工具,以便于基于机器学习的模型的功能提取,选择和基准,从而有助于更有效的分析和模拟生物信息学研究管道。

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