Scalable Community Detection Using Quantum Hamiltonian Descent and QUBO Formulation
November 22, 2024 Β· Declared Dead Β· π Design Automation Conference
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Authors
Jinglei Cheng, Ruilin Zhou, Yuhang Gan, Chen Qian, Junyu Liu
arXiv ID
2411.14696
Category
quant-ph: Quantum Computing
Cross-listed
cs.AI,
cs.LG
Citations
3
Venue
Design Automation Conference
Last Checked
5 months ago
Abstract
We present a quantum-inspired algorithm that utilizes Quantum Hamiltonian Descent (QHD) for efficient community detection. Our approach reformulates the community detection task as a Quadratic Unconstrained Binary Optimization (QUBO) problem, and QHD is deployed to identify optimal community structures. We implement a multi-level algorithm that iteratively refines community assignments by alternating between QUBO problem setup and QHD-based optimization. Benchmarking shows our method achieves up to 5.49\% better modularity scores while requiring less computational time compared to classical optimization approaches. This work demonstrates the potential of hybrid quantum-inspired solutions for advancing community detection in large-scale graph data.
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