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Published on: May 30, 2014
Qubit-efficient quantum intrusion detection using dual-parameter encoding and multi-metric calibration
Lubna Khan1, Burhan Ul Islam Khan2, Aabid A Mir3
1School of Computer Sciences, Universiti Sains Malaysia (USM), 11800, George Town, Penang, Malaysia.
Scientific Reports
|July 30, 2026
Summary
We developed a quantum intrusion detection system using Dual-Parameter encoding to reduce qubit requirements. This method enhances network security by efficiently detecting cyber threats with calibrated false-positive rates.
Area of Science:
- Quantum Computing
- Cybersecurity
- Network Intrusion Detection
Background:
- Modern networks generate high-dimensional data, challenging traditional intrusion detection systems.
- Quantum computing offers potential for enhanced detection but faces qubit limitations.
- Effective cybercrime defence requires efficient feature extraction and anomaly detection.
Purpose of the Study:
- To present a quantum-enhanced intrusion detection framework addressing qubit limitations.
- To introduce Dual-Parameter encoding for efficient feature representation.
- To develop a multi-metric anomaly scoring system with calibrated false-positive control.
Main Methods:
- Employed Dual-Parameter encoding using qubit polar angle (θ) and azimuthal phase (ϕ) to encode two normalized features.
- Developed a composite anomaly score unifying quantum fidelity, Kullback-Leibler divergence, and von Neumann entropy change.
- Utilized quantile calibration and the Dvoretzky-Kiefer-Wolfowitz inequality for false-positive rate control.
Main Results:
- Dual-Parameter encoding reduced data-qubit requirements from [Formula: see text] to [Formula: see text] for a feature set of size [Formula: see text].
- Evaluated the Dual-Parameter Quantum Intrusion Detection System (DP-QIDS) on UNSW-NB15 and CIC-IDS2017 datasets.
- Demonstrated that the fusion of fidelity, KL divergence, and entropy ensures reliable detection of various attack types.
Conclusions:
- DP-QIDS advances quantum intrusion detection towards practical, resource-aware deployment.
- The framework provides auditable and resilient security operations for modern network infrastructure.
- The study connects quantum simulation with real-world security applications.
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