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Feed-Forward Artificial Neural Network Based Inference System Applied in Bioinformatics Data-Mining

机译:基于前馈人工神经网络的基于生物信息学数据采矿的基于前馈人工神经网络的推理系统

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This paper describes a neural network based inference system developed as part of a bioinformatic application in order to help implement a systematic search scheme for the identification of genes which encode enzymes of metabolic pathways. The inference system uses BLAST sequence alignment values as inputs and generates a classification of the best candidates for inclusion in a metabolic pathway map. The system considers a workflow that allows the user to provide feedback with their final classification decisions. These are stored in conjunction with analyzed sequences for re-training and constant inference system improvement. The construction of the inference system involved the study of various neural topologies and training data models. Of the many training data models analyzed three are currently presented for comparison: using the BLAST algorithm's parameters directly, using standardized parameters determined by human experts, and a new proposal for input parameter normalization. The neural network was tested with all three data models. The three models enabled the inference system to perform a satisfactory rating of the candidates. Our proposal for parameter normalization produced the best model with several data sets showing a highly accurate prediction capability.
机译:本文介绍了作为生物信息应用应用的一部分开发的神经网络的推理系统,以帮助实现系统搜索方案,以鉴定编码代谢途径的酶的基因。推理系统使用BLAST序列对准值作为输入,并生成用于包含在代谢途径图中的最佳候选者的分类。该系统考虑一个工作流,允许用户提供与最终分类决策的反馈。这些与分析的序列结合存储,用于重新训练和恒定推理系统改进。推理系统的构建涉及各种神经拓扑和培训数据模型的研究。在分析的许多培训数据模型中,目前呈现了三个进行比较:使用由人体专家确定的标准化参数使用BLAST算法的参数,以及用于输入参数标准化的新提案。用所有三种数据模型测试神经网络。这三种模型使推动系统能够执行令人满意的候选者等级。我们对参数归一化的提议产生了具有若干数据集的最佳模型,显示了高度准确的预测能力。

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