Project Proposal
Project Proposal Introduction: In the realm of cybersecurity, understanding network traffic patterns is crucial for detecting threats and optimizing network performance. This project aims to conduct a comparative analysis of different machine learning models’ effectiveness in analyzing various types of network traffic data, including connectivity logs (CONN), metadata of transmitted files (Files), DNS, HTTP, and SSL. Additionally, we will explore whether a single model stands as the standalone best solution for traffic analysis or if a combination of models yields superior results. Moreover, we will detail how applications can leverage this information without the need to develop the application itself. Research Objectives:- Determine the effectiveness of different machine learning models in analyzing CONN, Files, DNS, HTTP, and SSL traffic data.
- Investigate whether a single model demonstrates superiority in traffic analysis across different data types or if a combination of models is more effective.
- Detail how applications can utilize the findings from our analysis without the necessity of building the application.
- Data Collection and Preprocessing: Assemble diverse, labeled datasets from a public source [1] containing CONN, Files, DNS, HTTP, and SSL traffic data. Preprocess the data to manage missing values, normalize features, and ensure uniformity across datasets.
- Experimental Design: Enumerate all possible permutations of our traffic type, feature selection, model classifier, and training type sets. Employ supervised classification machine learning techniques to evaluate results.
- Model Evaluation: Evaluate model performance of each permutation, and generate comparative graphs using confusion matrices, F-measure, accuracy, and other result metrics.
- Comparative Analysis: Compare the performance of different models across all data types together and individually for CONN, Files, DNS, HTTP, and SSL traffic. Explore implications for real-world applications.
- Application Implications: Detail how applications can utilize the research findings to enhance network security and optimization without developing the application itself.
- Identification of the most effective machine learning models for analyzing different types of network traffic data.
- Insights into whether a single model or a combination of models is the best solution for traffic analysis.
- Recommendations for applications to leverage research findings in network security and optimization without the need for application development.
- [1] Bendl, Š., Valeros, V., & Garcia, S., 2023, “CTU-SME-11: A Labeled Dataset with Real Benign and Malicious Network Traffic Mimicking a Small Medium-Size Enterprise Environment”, Zenodo, https://doi.org/10.5281/zenodo.7958259
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