Fault-tolerant circuit synthesis for universal fault-tolerant quantum computing
Yongsoo Hwang

TL;DR
This paper introduces a quantum circuit synthesis algorithm designed for universal fault-tolerant quantum computing with concatenated codes, ensuring local operations, error propagation prevention, and compatibility with classical control, demonstrated on specific quantum codes.
Contribution
It presents a novel synthesis method that preserves fault-tolerance and locality for concatenated codes, enabling practical implementation of universal fault-tolerant quantum protocols.
Findings
Synthesized circuits for [[7,1,3]] Steane code and [[23,1,7]] Golay code protocols.
Ensured circuits are local, self-contained, and fault-tolerant.
Demonstrated the method's effectiveness in practical quantum code implementations.
Abstract
We present a quantum circuit synthesis algorithm for implementing universal fault-tolerant quantum computing based on concatenated codes. To realize fault-tolerant quantum computing, the fault-tolerant quantum protocols should be transformed into executable quantum circuits based on the nearest-neighbor interaction. Unlike topological codes that are defined based on local operations fundamentally, for the concatenated codes, it is possible to obtain the circuits composed of the local operations by applying the quantum circuit synthesis. However, by the existing quantum circuit synthesis developed for ordinary quantum computational algorithms, the fault-tolerant of the protocol may not be preserved in the resulting circuit. Besides, we have to consider something more to implement the quantum circuit of universal fault-tolerant quantum computing. First, we have not to propagate quantum…
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Taxonomy
TopicsQuantum Computing Algorithms and Architecture · Quantum Information and Cryptography · Quantum Mechanics and Applications
