Randomized benchmarking of multiqubit gates

We describe an extension of single-qubit gate randomized benchmarking that measures the error of multiqubit gates in a quantum information processor. This platform-independent protocol evaluates the performance of Clifford unitaries, which form a basis of fault-tolerant quantum computing. We impleme...

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Veröffentlicht in:Physical review letters 2012-06, Vol.108 (26), p.260503-260503, Article 260503
Hauptverfasser: Gaebler, J P, Meier, A M, Tan, T R, Bowler, R, Lin, Y, Hanneke, D, Jost, J D, Home, J P, Knill, E, Leibfried, D, Wineland, D J
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Sprache:eng
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Zusammenfassung:We describe an extension of single-qubit gate randomized benchmarking that measures the error of multiqubit gates in a quantum information processor. This platform-independent protocol evaluates the performance of Clifford unitaries, which form a basis of fault-tolerant quantum computing. We implemented the benchmarking protocol with trapped ions and found an error per random two-qubit Clifford unitary of 0.162±0.008, thus setting the first benchmark for such unitaries. By implementing a second set of sequences with an extra two-qubit phase gate inserted after each step, we extracted an error per phase gate of 0.069±0.017. We conducted these experiments with transported, sympathetically cooled ions in a multizone Paul trap-a system that can in principle be scaled to larger numbers of ions.
ISSN:0031-9007
1079-7114
DOI:10.1103/PhysRevLett.108.260503