Cluster-State Quantum Computing Enhanced by High-Fidelity Generalized Measurements
Devon N. Biggerstaff, Rainer Kaltenbaek, Deny R. Hamel, Gregor Weihs, Terry Rudolph, Katharina Resch
Abstract
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Devon N. Biggerstaff, Rainer Kaltenbaek, Deny R. Hamel, Gregor Weihs, Terry Rudolph, Katharina Resch
Abstract
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We introduce and implement a technique to extend the quantum computational power of cluster states by replacing some projective measurements with generalized quantum measurements (POVMs). As an experimental demonstration we fully realize an arbitrary three-qubit cluster computation by implementing a tunable linear-optical POVM, as well as fast active feedforward, on a two-qubit photonic cluster state. Over 206 different computations, the average output fidelity is 0.9832+/-0.0002; furthermore the error contribution from our POVM device and feedforward is only of O(10(-3)), less than some recent thresholds for fault-tolerant cluster computing.
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We introduce and implement a technique to extend the quantum computational power of cluster states by replacing some projective measurements with generalized quantum measurements (POVMs). As an experimental demonstration we fully realize an arbitrary three-qubit cluster computation by implementing a tunable linear-optical POVM, as well as fast active feedforward, on a two-qubit photonic cluster state. Over 206 different computations, the average output fidelity is 0.9832+/-0.0002; furthermore the error contribution from our POVM device and feedforward is only of O(10(-3)), less than some recent thresholds for fault-tolerant cluster computing.
Key concepts: Cluster state, Quantum computer, POVM, Qubit, Cluster (spacecraft), Fidelity, Feed forward, Computer science