SIQS

The ultimate precision limits for noisy frequency estimation

Date: 
2016-03-24
Author(s): 

Andrea Smirne, Jan Kołodyński, Susana F. Huelga, Rafał Demkowicz-Dobrzański

Reference: 

Phys. Rev. Lett. 116, 120801 (2015) http://arxiv.org/pdf/1511.02708.pdf

Quantum metrology protocols allow us to surpass precision limits typical to classical statistics. However, in recent years, no-go theorems have been formulated, which state that typical forms of uncorrelated noise can constrain the quantum enhancement to a constant factor and, thus, bound the error to the standard asymptotic scaling. In particular, that is the case of time-homogeneous (Lindbladian) dephasing and, more generally, all semigroup dynamics that include phase covariant terms, which commute with the system Hamiltonian.

Nonclassicality of Temporal Correlations

Date: 
2015-09-18
Author(s): 

Stephen Brierley, Adrian Kosowski, Marcin Markiewicz, Tomasz Paterek, Anna Przysiężna

Reference: 

Phys. Rev. Lett. 115, 120404 (2015) http://arxiv.org/abs/1501.03505

The results of spacelike separated measurements are independent of distant measurement settings, a property one might call two-way no-signaling. In contrast, timelike separated measurements are only one-way no-signaling since the past is independent of the future but not vice versa. For this reason some temporal correlations that are formally identical to nonclassical spatial correlations can still be modeled classically.

Quantum interferometric measurements of temperature

Date: 
2015-09-10
Author(s): 

Marcin Jarzyna, Marcin Zwierz

Reference: 

Phys. Rev. A 92, 032112 (2015) http://arxiv.org/abs/1412.5609

We provide a detailed description of the quantum interferometric thermometer, which is a device that estimates the temperature of a sample from the measurements of the optical phase.

Improved Quantum Magnetometry beyond the Standard Quantum Limit

Date: 
2015-07-22
Author(s): 

J. B. Brask, R. Chaves, J. Kołodyński

Reference: 

Phys. Rev. X 5, 031010 (2015) http://arxiv.org/abs/1411.0716

Under ideal conditions, quantum metrology promises a precision gain over classical techniques scaling quadratically with the number of probe particles. At the same time, no-go results have shown that generic, uncorrelated noise limits the quantum advantage to a constant factor.

Quantum computation speedup limits from quantum metrological precision bounds

Date: 
2015-06-17 - 2016-06-17
Author(s): 

Rafał Demkowicz-Dobrzański, Marcin Markiewicz

Reference: 

Phys. Rev. A 91, 062322 (2015) http://arxiv.org/abs/1412.6111

We propose a scheme for translating metrological precision bounds into lower bounds on query complexity of quantum search algorithms. Within the scheme the link between quadratic performance enhancement in idealized quantum metrological and quantum computing schemes becomes clear.

Linear optics schemes for entanglement distribution with realistic single-photon sources

Date: 
2014-09-22
Author(s): 

Mikołaj Lasota, Czesław Radzewicz, Konrad Banaszek, Rob Thew

Reference: 

Phys. Rev. A 90, 033836 (2014)

We study the operation of linear optics schemes for entanglement distribution based on nonlocal photon subtraction when input states, produced by imperfect single-photon sources, exhibit both vacuum and multiphoton contributions. Two models for realistic photon statistics with radically different properties of the multiphoton “tail” are considered. The first model assumes occasional emission of double photons and linear attenuation, while the second one is motivated by heralded sources utilizing spontaneous parametric down-conversion.

Incoherent on-off keying with classical and non-classical light

Date: 
2015-02-09
Author(s): 

Marcin Jarzyna, Piotr Kuszaj, Konrad Banaszek

Reference: 

Optics Express 23, 3170-3175 (2015), http://arxiv.org/abs/1410.4575

We analyze the performance of on-off keying (OOK) and its restricted version pulse position modulation (PPM) over a lossy narrowband optical channel under the constraint of a low average photon number, when direct detection is used at the output. An analytical approximation for the maximum PPM transmission rate is derived, quantifying the effects of photon statistics on the communication efficiency in terms of the g(2) second-order intensity correlation function of the light source. Enhancement attainable through the use of sub-Poissonian light is discussed.

True precision limits in quantum metrology

Date: 
2015-01-09
Author(s): 

Marcin Jarzyna, Rafał Demkowicz-Dobrzański

Reference: 

New J. Phys. 17, 013010 (2015) http://arxiv.org/abs/1407.4805

We show that quantification of the performance of quantum-enhanced measurement schemes based on the concept of quantum Fisher information (QFI) yields results that are asymptotically equivalent to those from the rigorous Bayesian approach, provided generic uncorrelated noise is present in the setup.

Usefulness of an enhanced Kitaev phase-estimation algorithm in quantum metrology and computation

Date: 
2014-11-17
Author(s): 

Tomasz Kaftal, Rafał Demkowicz-Dobrzański

Reference: 

Phys. Rev. A 90, 062313 (2014) http://arxiv.org/abs/1405.5897

We analyze the performance of a generalized Kitaev’s phase-estimation algorithm where N phase gates, acting on M qubits prepared in a product state, may be distributed in an arbitrary way. Unlike the standard algorithm, where the mean square error scales as 1/N, the optimal generalizations offer the Heisenberg 1/N2 error scaling and we show that they are in fact very close to the fundamental Bayesian estimation bound.

Using Entanglement Against Noise in Quantum Metrology

Date: 
2014-12-19
Author(s): 

Rafal Demkowicz-Dobrzański, Lorenzo Maccone

Reference: 

Phys. Rev. Lett. 113, 250801 (2014) http://arxiv.org/abs/1407.2934

We analyze the role of entanglement among probes and with external ancillas in quantum metrology. In the absence of noise, it is known that unentangled sequential strategies can achieve the same Heisenberg scaling of entangled strategies and that external ancillas are useless.

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