The construction of topological error correction codes requires the ability to fabricate a lattice of physical qubits embedded on a manifold with a nontrivial topology such that the quantum information is encoded in the global degrees of freedom (i.e., the topology) of the manifold. However, the manufacturing of large-scale topological devices will undoubtedly suffer from fabrication errors—permanent faulty components such as missing physical qubits or failed entangling gates—introducing permanent defects into the topology of the lattice and hence significantly reducing the distance of the code and the quality of the encoded logical qubits. In this work we investigate how fabrication errors affect the performance of topological codes, using...
International audienceThe large-scale execution of quantum algorithms requires basic quantum operati...
Quantum error correcting codes (QECCs) allow us to protect qubits from noise and are expected to be ...
Quantum error correcting codes (QECCs) allow us to protect qubits from noise and are expected to be ...
The construction of topological error correction codes requires the ability to fabricate a lattice o...
The construction of topological error correction codes requires the ability to fabricate a lattice o...
© 2017 IOP Publishing Ltd and Deutsche Physikalische Gesellschaft. The yield of physical qubits fabr...
The yield of physical qubits fabricated in the laboratory is much lower than that of classical trans...
Fault tolerance is a prerequisite for scalable quantum computing. Architectures based on 2D topologi...
Biased noise is common in physical qubits, and tailoring a quantum code to the bias by locally modif...
We analyze surface codes, the topological quantum error-correcting codes introduced by Kitaev. In th...
Topological quantum error correction codes are currently among the most promising candidates for eff...
A common approach to studying the performance of quantum error correcting codes is to assume indepen...
A promising approach to overcome decoherence in quantum computing schemes is to perform active quant...
Many proposals for quantum information processing are subject to detectable loss errors. In this Let...
Realizing the full potential of quantum computation requires quantum error correction (QEC), with mo...
International audienceThe large-scale execution of quantum algorithms requires basic quantum operati...
Quantum error correcting codes (QECCs) allow us to protect qubits from noise and are expected to be ...
Quantum error correcting codes (QECCs) allow us to protect qubits from noise and are expected to be ...
The construction of topological error correction codes requires the ability to fabricate a lattice o...
The construction of topological error correction codes requires the ability to fabricate a lattice o...
© 2017 IOP Publishing Ltd and Deutsche Physikalische Gesellschaft. The yield of physical qubits fabr...
The yield of physical qubits fabricated in the laboratory is much lower than that of classical trans...
Fault tolerance is a prerequisite for scalable quantum computing. Architectures based on 2D topologi...
Biased noise is common in physical qubits, and tailoring a quantum code to the bias by locally modif...
We analyze surface codes, the topological quantum error-correcting codes introduced by Kitaev. In th...
Topological quantum error correction codes are currently among the most promising candidates for eff...
A common approach to studying the performance of quantum error correcting codes is to assume indepen...
A promising approach to overcome decoherence in quantum computing schemes is to perform active quant...
Many proposals for quantum information processing are subject to detectable loss errors. In this Let...
Realizing the full potential of quantum computation requires quantum error correction (QEC), with mo...
International audienceThe large-scale execution of quantum algorithms requires basic quantum operati...
Quantum error correcting codes (QECCs) allow us to protect qubits from noise and are expected to be ...
Quantum error correcting codes (QECCs) allow us to protect qubits from noise and are expected to be ...