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Machine Learning Based Network Intrusion Detection System

Cyber Security / MLMedium-Hard

Approx. component budget: Rs. 0 - 1,000

Objective

Train and compare detectors on a public intrusion dataset and study the false alarm rate.

What you will build

A model that classifies network traffic records as normal or as an attack type such as DoS, probe or brute force, with a live dashboard on recorded traffic.

Results you can expect

What you will learn

Network features, imbalanced classes, why accuracy alone is misleading in security, and dataset limits.

Tools and notes

Python, scikit-learn, NSL-KDD or CIC-IDS2017 dataset, Streamlit or Grafana. Mention that the datasets are old and may not match modern traffic.

Resume points from this project

Replace [x] with your own measured results. Write only what you really did.

Rs. 99 project guide: prepared on request

The short guide for this project is prepared when you ask for it. Message us on WhatsApp and we will prepare it and tell you when it is ready.

Payment details are shared in the chat. We send the PDF on WhatsApp after your payment is confirmed.

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