We present a planar surface-code-based scheme for fault-tolerant quantum computation which eliminates the time overhead of single-qubit Clifford gates, and implements long-range multi-target CNOT gates with a time overhead that scales only logarithmically with the control-target separation. This is done by replacing hardware operations for single-qubit Clifford gates with a classical tracking protocol. Inter-qubit communication is added via a modified lattice surgery protocol that employs twist defects of the surface code. The long-range multi-target CNOT gates facilitate magic state distillation, which renders our scheme fault-tolerant and universal
Majorana zero modes (MZMs) are promising candidates for topologically-protected quantum computing ha...
Lattice surgery is a measurement-based technique for performing fault-tolerant quantum computation i...
Quantum error correction (QEC) and fault-tolerant (FT) mechanisms are essential for reliable quantum...
The surface code is currently the leading proposal to achieve fault-tolerant quantum computation. Am...
The surface code is currently the leading proposal to achieve fault-tolerant quantum computation. Am...
The surface code is one of the most successful approaches to topological quantum error-correction. I...
Given a quantum gate circuit, how does one execute it in a fault-tolerant architecture with as littl...
Given a quantum gate circuit, how does one execute it in a fault-tolerant architecture with as littl...
Abstract. In recent years, surface codes have become the preferred method for quantum error correcti...
We provide an efficient algorithm to compile quantum circuits for fault-tolerant execution. We targe...
The large-scale execution of quantum algorithms requires basic quantum operations to be implemented ...
International audienceThe large-scale execution of quantum algorithms requires basic quantum operati...
Thesis: Ph. D., Massachusetts Institute of Technology, Department of Physics, 2018.Cataloged from PD...
The large-scale execution of quantum algorithms requires basic quantum operations to be implemented ...
Quantum error correction (QEC) and fault-tolerant (FT) mechanisms are essential for reliable quantum...
Majorana zero modes (MZMs) are promising candidates for topologically-protected quantum computing ha...
Lattice surgery is a measurement-based technique for performing fault-tolerant quantum computation i...
Quantum error correction (QEC) and fault-tolerant (FT) mechanisms are essential for reliable quantum...
The surface code is currently the leading proposal to achieve fault-tolerant quantum computation. Am...
The surface code is currently the leading proposal to achieve fault-tolerant quantum computation. Am...
The surface code is one of the most successful approaches to topological quantum error-correction. I...
Given a quantum gate circuit, how does one execute it in a fault-tolerant architecture with as littl...
Given a quantum gate circuit, how does one execute it in a fault-tolerant architecture with as littl...
Abstract. In recent years, surface codes have become the preferred method for quantum error correcti...
We provide an efficient algorithm to compile quantum circuits for fault-tolerant execution. We targe...
The large-scale execution of quantum algorithms requires basic quantum operations to be implemented ...
International audienceThe large-scale execution of quantum algorithms requires basic quantum operati...
Thesis: Ph. D., Massachusetts Institute of Technology, Department of Physics, 2018.Cataloged from PD...
The large-scale execution of quantum algorithms requires basic quantum operations to be implemented ...
Quantum error correction (QEC) and fault-tolerant (FT) mechanisms are essential for reliable quantum...
Majorana zero modes (MZMs) are promising candidates for topologically-protected quantum computing ha...
Lattice surgery is a measurement-based technique for performing fault-tolerant quantum computation i...
Quantum error correction (QEC) and fault-tolerant (FT) mechanisms are essential for reliable quantum...