Magic state distillation is one of the leading candidates for implementing universal fault-tolerant logical gates. However, the distillation circuits themselves are not fault-tolerant, so there is additional cost to first implement encoded Clifford gates with negligible error. In this paper we present a scheme to fault-tolerantly and directly prepare magic states using flag qubits. One of these schemes requires only three ancilla qubits, even with noisy Clifford gates. We compare the physical qubit and gate cost of our scheme to the magic state distillation protocol of Meier, Eastin, and Knill (MEK), which is efficient and uses a small stabilizer circuit. For low enough noise rates, we show that in some regimes the overhead can be improved ...
We consider a model of quantum computation in which the set of elementary operations is limited to C...
Quantum computers can be protected from noise by encoding the logical quantum information redundantl...
We compare two different implementations of fault-tolerant entangling gates on logical qubits. In on...
We propose a family of error-detecting stabilizer codes with an encoding rate of 1/3 that permit a t...
We propose families of protocols for magic-state distillation—important components of fault-toleranc...
A practical quantum computer must not merely store information, but also process it. To prevent erro...
Magic state distillation is a fundamental technique for realizing fault-tolerant universal quantum c...
Error-correcting codes protect quantum information and form the basis of fault-tolerant quantum comp...
The standard approach to fault-tolerant quantum computation is to store information in a quantum err...
Abstract We study two-qubit circuits over the Clifford+CS gate set, which consists of the Clifford g...
A non-Clifford gate is required for universal quantum computation, and, typically, this is the most ...
Fault-tolerant protocols enable large and precise quantum algorithms. Many such protocols rely on a ...
Magic state distillation is a resource intensive subroutine that consumes noisy input states to prod...
For universal quantum computation, a major challenge to overcome for practical implementation is the...
Leading approaches to fault-tolerant quantum computation dedicate a significant portion of the hardw...
We consider a model of quantum computation in which the set of elementary operations is limited to C...
Quantum computers can be protected from noise by encoding the logical quantum information redundantl...
We compare two different implementations of fault-tolerant entangling gates on logical qubits. In on...
We propose a family of error-detecting stabilizer codes with an encoding rate of 1/3 that permit a t...
We propose families of protocols for magic-state distillation—important components of fault-toleranc...
A practical quantum computer must not merely store information, but also process it. To prevent erro...
Magic state distillation is a fundamental technique for realizing fault-tolerant universal quantum c...
Error-correcting codes protect quantum information and form the basis of fault-tolerant quantum comp...
The standard approach to fault-tolerant quantum computation is to store information in a quantum err...
Abstract We study two-qubit circuits over the Clifford+CS gate set, which consists of the Clifford g...
A non-Clifford gate is required for universal quantum computation, and, typically, this is the most ...
Fault-tolerant protocols enable large and precise quantum algorithms. Many such protocols rely on a ...
Magic state distillation is a resource intensive subroutine that consumes noisy input states to prod...
For universal quantum computation, a major challenge to overcome for practical implementation is the...
Leading approaches to fault-tolerant quantum computation dedicate a significant portion of the hardw...
We consider a model of quantum computation in which the set of elementary operations is limited to C...
Quantum computers can be protected from noise by encoding the logical quantum information redundantl...
We compare two different implementations of fault-tolerant entangling gates on logical qubits. In on...