Distilling GHZ States using Stabilizer Codes
Narayanan Rengaswamy, Ankur Raina, Nithin Raveendran, Bane Vasi\'c

TL;DR
This paper introduces a novel GHZ state distillation protocol using stabilizer codes, leveraging the GHZ-map to extend QECC-based Bell pair distillation to multipartite entanglement, enabling high-rate, high-fidelity GHZ state generation.
Contribution
It develops a new GHZ distillation method based on stabilizer codes and the GHZ-map, extending Bell pair protocols to multipartite states with improved efficiency.
Findings
Protocol achieves high-fidelity GHZ states using stabilizer codes.
Simulation demonstrates the protocol's effectiveness with the 5-qubit code.
The GHZ-map is an algebra homomorphism enabling code-based distillation.
Abstract
Entanglement distillation is a well-studied problem in quantum information, where one typically starts with noisy Bell pairs and distills Bell pairs of higher fidelity. While distilling Bell pairs is the canonical setting, it is important to study the distillation of multipartite entangled states because these can be useful for realizing distributed algorithms on quantum networks. In this paper, we study the distillation of GHZ states using quantum error correcting codes (QECCs). Using the stabilizer formalism, we begin by explaining the QECC-based Bell pair distillation protocol in arXiv:0708.3699, which relies particularly on the transpose symmetry between Alice's and Bob's qubits in Bell states. Extending this idea, we show that, given GHZ states, performing a matrix on Alice's qubits is equivalent to performing a "stretched" version of the transpose of the matrix on the…
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Taxonomy
TopicsQuantum Computing Algorithms and Architecture · Quantum Information and Cryptography · Quantum-Dot Cellular Automata
