An Effective Dual Level Flow Optimized AlexNet-BiGRU Model for Intrusion Detection in Cloud Computing

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Abstract

In recent years, several existing techniques have been developed to solve security issues in cloud systems. The proposed stud intends to develop an effective deep-learning mechanism for detecting network intrusions. The proposed study involves three stages pre processing, feature selection and classification. Initially, the available noises in the input data are eliminated by pre-processing via data cleaning discretization and normalization. The large feature dimensionality of pre-processed data is reduced by selecting optimal features using the wil horse optimization-based feature selection (WHO-FS) model. The selected features are then input into a proposed dual-level flow optimize AlexNet-BiGRU detection model (DLFAB-IDS). Whereas the flow direction algorithm (FDA) approach optimally tunes the hyperparameters an helps to enhance the classification performance. In the proposed model, the intrusions are detected by AlexNet and the multiclass classification i performed through the BiGRU method. The proposed study used the NSL-KDD dataset, and the simulation was done by Python tool. The efficac of a proposed model is measured by evaluating several performance metrics. The comparison over other existing techniques shows that th proposed model brings higher performance in terms of accuracy 96.81%, recall 95.84%, precision 96.24%, f1-score 96.75%, prediction time 0.43 and training time 152.84s.

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APA

Bingu, R., & Jothilakshmi, S. (2023). An Effective Dual Level Flow Optimized AlexNet-BiGRU Model for Intrusion Detection in Cloud Computing. International Journal on Recent and Innovation Trends in Computing and Communication, 11(7s), 153–165. https://doi.org/10.17762/ijritcc.v11i7s.6987

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