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Review of Distributed Quantum Computing. From single QPU to High Performance Quantum Computing
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The emerging field of quantum computing has shown it might change how we process information by using the unique principles of quantum mechanics. As researchers continue to push the boundaries of quantum technologies to unprecedented levels, distributed quantum computing raises as an obvious path to explore with the aim of boosting the computational power of current quantum systems. This paper presents a comprehensive survey of the current state of the art in the distributed quantum computing field, exploring its foundational principles, landscape of achievements, challenges, and promising directions for further research. From quantum communication protocols to entanglement-based distributed algorithms, each aspect contributes to the mosaic of distributed quantum computing, making it an attractive approach to address the limitations of classical computing. Our objective is to provide an exhaustive overview for experienced researchers and field newcomers.
Forward citations
Cited by 3 Pith papers
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Analyzing Common Electronic Structure Theory Algorithms for Distributed Quantum Computing
Under local-operation circuit cutting, only the LUCJ ansatz among five tested electronic structure methods shows practical sampling overhead.
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Simulating Quantum State Transfer between Distributed Devices using Noisy Interconnects
A noisy quantum channel can simulate a perfect state transfer via a quasiprobability recipe whose sampling overhead is 2/F - 1, where F is the channel's entanglement fidelity, validated on IBM quantum hardware.
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Exploring the feasibility of probabilistic and deterministic quantum gates between T centers in silicon
A photon interference-based gate with feedback between silicon T centers can exceed 50 percent success probability and is analytically shown to offer competitive fidelity and efficiency.
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