Journal of Computer and Communications

Journal of Computer and Communications

ISSN Print: 2327-5219
ISSN Online: 2327-5227
www.scirp.net/journal/jcc
E-mail: [email protected]
"A Decision Tree Classifier for Intrusion Detection Priority Tagging"
written by Adel Ammar,
published by Journal of Computer and Communications, Vol.3 No.4, 2015
has been cited by the following article(s):
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[1] Detection of network attacks using machine learning and deep learning models
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[2] Comparative analysis of intrusion detection systems and machine learning based model analysis through decision tree
IEEE Access, 2023
[3] Enhanced Quantum-Secure Ensemble Intrusion Detection Techniques for Cloud Based on Deep Learning
Cognitive Computation, 2023
[4] Case Study on the Application of Deep Learning to Network Intruder Detection
2023
[5] Intrusion Detection System Based on Machine Learning Techniques: A Survey
2022 2nd International Conference on …, 2022
[6] Establishing the contaminating effect of metadata feature inclusion in machine-learned network intrusion detection models
… on Detection of …, 2022
[7] Intrusion detection in cyber–physical environment using hybrid Naïve Bayes—Decision table and multi-objective evolutionary feature selection
Computer …, 2022
[8] Machine Learning Models to Classify Normal and Fibrotic Mouse Liver Model using Dielectric Properties
… on Bioinformatics and …, 2022
[9] Importance of Machine Learning Techniques to Improve the Open Source Intrusion Detection Systems
Indonesian Journal of …, 2021
[10] Intrusion Alert Reduction Based on Unsupervised and Supervised Learning Algorithms
B, MMD Siraj - International Journal of Innovative …, 2021
[11] A comparative study of the performance of machine learning algorithms to detect malicious traffic in IoT networks
Journal of Digital Convergence, 2021
[12] A consolidated decision tree-based intrusion detection system for binary and multiclass imbalanced datasets
2021
[13] AI Approaches for IoT Security Analysis
2021
[14] IoT 네트워크에서 악성 트래픽을 탐지하기 위한 머신러닝 알고리즘의 성능 비교연구.
Journal of Digital Convergence, 2021
[15] Agrupamento e Classificação de Consumidores de Energia Rural Utilizando Random Forest e K-Nearest Neighbors
2020
[16] Cyber Threat Intelligence Using Deep Learning to Detect Abnormal Network Behavior
2020
[17] Agrupamento e Classificaçao de Consumidores de Energia Rural Utilizando Random Forest e K-Nearest Neighbors
… de Automática-CBA, 2020
[18] Bi-directional Recurrent Neural network for Intrusion Detection System (IDS) in the internet of things (IoT)
2020
[19] Detecting Stealth-based Attacks in Large Campus Networks
2020
[20] Designing an effective network forensic framework for the investigation of botnets in the Internet of Things
2020
[21] Performance Comparison and Current Challenges of Using Machine Learning Techniques in Cybersecurity
2020
[22] Machine Learning and Deep Learning Methods for Intrusion Detection Systems: A Survey
2019
[23] A Case Study on Using Deep Learning for Network Intrusion Detection
2019
[24] Deep learning approaches for network intrusion detection
2019
[25] Hybrid approach to provide situational awareness for information security in computational environments
2018
[26] Intrusion Detection Techniques: A Review
2018
[27] A Hybrid Architecture to Enrich Context Awareness through Data Correlation
2018
[28] Anomaly-Based Intrusion Detection Using Extreme Learning Machine and Aggregation of Network Traffic Statistics in Probability Space
Cognitive Computation, 2018
[29] Machine Learning and Deep Learning Methods for Cybersecurity
2018
[30] Mining Anomalies in Large ISCX Dataset Using Machine Learning Algorithms in KNIME
Proceedings of 3rd International Conference on Internet of Things and Connected Technologies (ICIoTCT), 2018
[31] A HYBRID INTRUSION DETECTION TECHNIQUE BASED ON IRF & AODE FOR KDD-CUP 99 DATASET
International Research Journal of Engineering and Technology, 2018
[32] Network Intrusion Detection Using Flow Statistics
2018
[33] Towards the Development of Realistic Botnet Dataset in the Internet of Things for Network Forensic Analytics: Bot-IoT Dataset
2018
[34] Anomaly-Based Intrusion Detection by Modeling Probability Distributions of Flow Characteristics
2017
[35] 2: uma abordagem consciente de situação para segurança em infraestruturas computacionais
Revista Brasileira de Computação Aplicada, 2016
[36] HYBRID INTRUSION DETECTION SYSTEM FOR PRIVATE CLOUD: AN INTEGRATED APPROACH
2016
[37] Σύγχρονα εργαλεία, τεχνικές και μεθοδολογίες για τον χαρακτηρισμό κυβερνοεπιθέσεων και κακόβουλου λογισμικού
2016
[38] INTRUSION DETECTION SYSTEM (IDS) DEVELOPMENT USING TREE-BASED MACHINE LEARNING ALGORITHMS
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