Standard error correction techniques only provide a quantum memory and need extra gadgets to perform computation. Central to quantum algorithms are small angle rotations, which can be fault-tolerantly implemented given a supply of an unconventional species of magic state. We present a low-cost distillation routine for preparing these small angle magic states. Our protocol builds on the work of Duclos-Cianci and Poulin [Phys. Rev. A, 91, 042315 (2015)] by compressing their circuit. Additionally, we present a method of diluting magic states that reduces costs associated with very small angle rotations. We quantify performance by the expected number of noisy magic states consumed per rotation, and compare with other protocols. For modest size ...
Fault-tolerant quantum computers compose elements of a discrete gate set in order to approximate a t...
We propose families of protocols for magic-state distillation—important components of fault-toleranc...
Magic states are key ingredients in schemes to realize universal fault-tolerant quantum computation....
Standard error-correction techniques only provide a quantum memory and need extra gadgets to perform...
Magic state distillation is a fundamental technique for realizing fault-tolerant universal quantum c...
Magic states are eigenstates of non-Pauli operators. One way of suppressing errors present in magic ...
Quantum computing requires a universal set of gate operations; regarding gates as rotations, any rot...
The leading paradigm for performing a computation on quantum memories can be encapsulated as distill...
Magic state distillation is a resource intensive sub-routine for quantum computation. The ratio of n...
We propose a family of error-detecting stabilizer codes with an encoding rate of 1/3 that permit a t...
Leading approaches to fault-tolerant quantum computation dedicate a significant portion of the hardw...
Magic state distillation is one of the leading candidates for implementing universal fault-tolerant ...
The standard approach to fault-tolerant quantum computation is to store information in a quantum err...
Fault-tolerant protocols enable large and precise quantum algorithms. Many such protocols rely on a ...
The development of a framework for quantifying ‘non-stabilizerness’ of quantum operations is motivat...
Fault-tolerant quantum computers compose elements of a discrete gate set in order to approximate a t...
We propose families of protocols for magic-state distillation—important components of fault-toleranc...
Magic states are key ingredients in schemes to realize universal fault-tolerant quantum computation....
Standard error-correction techniques only provide a quantum memory and need extra gadgets to perform...
Magic state distillation is a fundamental technique for realizing fault-tolerant universal quantum c...
Magic states are eigenstates of non-Pauli operators. One way of suppressing errors present in magic ...
Quantum computing requires a universal set of gate operations; regarding gates as rotations, any rot...
The leading paradigm for performing a computation on quantum memories can be encapsulated as distill...
Magic state distillation is a resource intensive sub-routine for quantum computation. The ratio of n...
We propose a family of error-detecting stabilizer codes with an encoding rate of 1/3 that permit a t...
Leading approaches to fault-tolerant quantum computation dedicate a significant portion of the hardw...
Magic state distillation is one of the leading candidates for implementing universal fault-tolerant ...
The standard approach to fault-tolerant quantum computation is to store information in a quantum err...
Fault-tolerant protocols enable large and precise quantum algorithms. Many such protocols rely on a ...
The development of a framework for quantifying ‘non-stabilizerness’ of quantum operations is motivat...
Fault-tolerant quantum computers compose elements of a discrete gate set in order to approximate a t...
We propose families of protocols for magic-state distillation—important components of fault-toleranc...
Magic states are key ingredients in schemes to realize universal fault-tolerant quantum computation....