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Professor Artur Ekert FRS

Professor

Research theme

  • Quantum information and computation

Sub department

  • Atomic and Laser Physics
artur.ekert@physics.ox.ac.uk
Clarendon Laboratory
  • About
  • Publications

Optimal phase estimation in quantum networks

(2007)

Authors:

Wim van Dam, G Mauro D'Ariano, Artur Ekert, Chiara Macchiavello, Michele Mosca

Unifying classical and quantum key distillation.

4th Theory of Cryptography Conference, TCC 2007, Amsterdam, The Netherlands, February 21-24, 2007. Proceedings (Lecture Notes in Computer Science 4392/2007) (2007) 456-478

Authors:

AK Ekert, J. Oppenheim, M. Christandl, R. Renner

Optimal quantum circuits for general phase estimation.

Phys Rev Lett 98:9 (2007) 090501

Authors:

Wim van Dam, G Mauro D'Ariano, Artur Ekert, Chiara Macchiavello, Michele Mosca

Abstract:

We address the problem of estimating the phase phi given N copies of the phase-rotation gate uphi. We consider, for the first time, the optimization of the general case where the circuit consists of an arbitrary input state, followed by any arrangement of the N phase rotations interspersed with arbitrary quantum operations, and ending with a general measurement. Using the polynomial method, we show that, in all cases where the measure of quality of the estimate phi for phi depends only on the difference phi-phi, the optimal scheme has a very simple fixed form. This implies that an optimal general phase estimation procedure can be found by just optimizing the amplitudes of the initial state.

Optimal quantum circuits for general phase estimation

Physical Review Letters 9 (2007) 0609160

Authors:

AK Ekert, Chiara Macchiavello, Michele Mosca, Wim VanDam

Robust state transfer and rotation through a spin chain via dark passage

ArXiv quant-ph/0702019 (2007)

Authors:

Toshio Ohshima, Artur Ekert, Daniel KL Oi, Dagomir Kaslizowski, LC Kwek

Abstract:

Quantum state transfer through a spin chain via adiabatic dark passage is proposed. This technique is robust against control field fluctuations and unwanted environmental coupling of intermediate spins. Our method can be applied to spin chains with more than three spins. We also propose single qubit rotation using this technique.

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