首页> 外国专利> LIGHTWEIGHT INTRUSION DETECTION METHOD THROUGH CORRELATION BASED HYBRID FEATURE SELECTION

LIGHTWEIGHT INTRUSION DETECTION METHOD THROUGH CORRELATION BASED HYBRID FEATURE SELECTION

机译:基于关联的混合特征选择的轻量入侵检测方法

摘要

A lightweight intrusion detection method through correlation based hybrid feature selection in a computer is provided to remarkably reduce a training and testing time while keeping a stable feature detection result, a low false detection rate, and a high detection rate. Preprocessed checking data from checking data is classified into a training dataset and a testing dataset. The training dataset is classified again into a feature selection dataset processing through a hybrid feature selection process based on correlation resulted as a set of selected features, a model building dataset used for constructing an intrusion detection model using the selected feature, and a verification dataset. The intrusion detection model is verified by the verification dataset and is tested by the testing dataset. The correlation based hybrid feature selection process is sent to the modeling dataset having the reduced feature and the verification dataset having the reduced feature through an adder. The modeling dataset and the verification dataset are sent to a classification model through machine learning and verification.
机译:提供一种通过在计算机中基于相关性的混合特征选择的轻量级入侵检测方法,以显着减少训练和测试时间,同时保持稳定的特征检测结果,低的虚假检测率和高的检测率。来自检查数据的预处理检查数据被分类为训练数据集和测试数据集。基于作为一组选定特征的相关结果而产生的混合特征选择过程,将训练数据集再次分类为特征选择数据集处理,该结果是作为一组选定特征产生的相关性,用于使用选定特征构建入侵检测模型的模型构建数据集以及验证数据集。入侵检测模型由验证数据集进行验证,并由测试数据集进行测试。通过加法器将基于相关性的混合特征选择过程发送到具有缩减特征的建模数据集和具有缩减特征的验证数据集。通过机器学习和验证,将建模数据集和验证数据集发送到分类模型。

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