TL;DR
This paper enhances multi-node decision diagram-based quantum simulators by introducing ring communication and automatic swap insertion techniques, significantly improving parallelization and reducing simulation time for large quantum circuits.
Contribution
It proposes novel ring communication and swap insertion methods tailored for decision diagram-based quantum simulators, enabling efficient multi-node parallelization.
Findings
Multi-node implementation reduces runtime by up to 26 times.
Ring communication outperforms broadcast communication in speed-up.
Simulation of 38-qubit Shor circuits completes in 147 seconds.
Abstract
An N-bit quantum state requires a vector of length , leading to an exponential increase in the required memory with N in conventional statevector-based quantum simulators. A proposed solution to this issue is the decision diagram-based quantum simulator, which can significantly decrease the necessary memory and is expected to operate faster for specific quantum circuits. However, decision diagram-based quantum simulators are not easily parallelizable because data must be manipulated dynamically, and most implementations run on one thread. This paper introduces ring communication-based optimal parallelization and automatic swap insertion techniques for multi-node implementation of decision diagram-based quantum simulators. The ring communication approach is designed so that each node communicates with its neighboring nodes, which can facilitate faster and more parallel communication…
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