An extensible experimental design for optical continuous-variable cluster states of arbitrary size using four offline (vacuum) squeezers and six beam splitters is presented. This method has all the advantages of a temporal-mode encoding, including finite requirements for coherence and stability even as the computation length increases indefinitely, with none of the difficulty of inline squeezing. The extensibility stems from a construction based on Gaussian projected entangled pair states. The potential for use of this design within a fully fault-tolerant model is discussed
The cluster states and Greenberger-Horne-Zeilinger (GHZ) states are two different types of multipart...
We give simple examples that illustrate the principles of one-way quantum computation using Gaussian...
Quantum computers promise ultrafast performance for certain tasks. Experimentally appealing, measure...
We present a compact experimental design for producing an arbitrarily large optical continuous-varia...
We describe a generalization of the cluster-state model of quantum computation to continuous-variabl...
We show that any continuous-variable (CV) cluster state with a bipartite graph -- a class that inclu...
The linear optical creation of Gaussian cluster states, a potential resource for universal quantum c...
The linear optical creation of Gaussian cluster states, a potential resource for universal quantum c...
A practical scheme is proposed for the creation of continuous-variable entangled cluster states of f...
We examine the feasibility of generating continuous-variable multipartite entanglement in an intraca...
Continuous-variable Gaussian cluster states are a potential resource for universal quantum computati...
Continuous-variable Gaussian cluster states are a potential resource for universal quantum computati...
Continuous-variable cluster states offer a potentially promising method of implementing a quantum co...
Continuous-variable cluster states offer a potentially promising method of implementing a quantum co...
We propose an experimental design for universal continuous-variable quantum computation that incorpo...
The cluster states and Greenberger-Horne-Zeilinger (GHZ) states are two different types of multipart...
We give simple examples that illustrate the principles of one-way quantum computation using Gaussian...
Quantum computers promise ultrafast performance for certain tasks. Experimentally appealing, measure...
We present a compact experimental design for producing an arbitrarily large optical continuous-varia...
We describe a generalization of the cluster-state model of quantum computation to continuous-variabl...
We show that any continuous-variable (CV) cluster state with a bipartite graph -- a class that inclu...
The linear optical creation of Gaussian cluster states, a potential resource for universal quantum c...
The linear optical creation of Gaussian cluster states, a potential resource for universal quantum c...
A practical scheme is proposed for the creation of continuous-variable entangled cluster states of f...
We examine the feasibility of generating continuous-variable multipartite entanglement in an intraca...
Continuous-variable Gaussian cluster states are a potential resource for universal quantum computati...
Continuous-variable Gaussian cluster states are a potential resource for universal quantum computati...
Continuous-variable cluster states offer a potentially promising method of implementing a quantum co...
Continuous-variable cluster states offer a potentially promising method of implementing a quantum co...
We propose an experimental design for universal continuous-variable quantum computation that incorpo...
The cluster states and Greenberger-Horne-Zeilinger (GHZ) states are two different types of multipart...
We give simple examples that illustrate the principles of one-way quantum computation using Gaussian...
Quantum computers promise ultrafast performance for certain tasks. Experimentally appealing, measure...