The Experts below are selected from a list of 294 Experts worldwide ranked by ideXlab platform
Federico Cilento - One of the best experts on this subject based on the ideXlab platform.
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Pulsed homodyne Gaussian quantum tomography with low Detection Efficiency
New Journal of Physics, 2014Co-Authors: Martina Esposito, Fabio Benatti, Roberto Floreanini, Stefano Olivares, Francesco Randi, Kelvin Titimbo, Marco Pividori, Fabio Novelli, Federico Cilento, Fulvio ParmigianiAbstract:Pulsed homodyne quantum tomography usually requires a high Detection Efficiency limiting its applicability in quantum optics. Here, it is shown that the presence of low Detection Efficiency ($
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pulsed homodyne gaussian quantum tomography with low Detection Efficiency
New Journal of Physics, 2014Co-Authors: Martina Esposito, Fabio Benatti, Roberto Floreanini, Stefano Olivares, Francesco Randi, Kelvin Titimbo, Marco Pividori, Fabio Novelli, Federico CilentoAbstract:Pulsed homodyne quantum tomography usually requires a high Detection Efficiency, limiting its applicability in quantum optics. Here, it is shown that the presence of low Detection Efficiency () does not prevent the tomographic reconstruction of quantum states of light, specifically, of Gaussian states. This result is obtained by applying the so-called ?minimax? adaptive reconstruction of the Wigner function to pulsed homodyne Detection. In particular, we prove, by both numerical and real experiments, that an effective discrimination of different Gaussian quantum states can be achieved. Our finding paves the way to a more extensive use of quantum tomographic methods, even in physical situations in which high Detection Efficiency is unattainable.
Fabio Benatti - One of the best experts on this subject based on the ideXlab platform.
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Pulsed homodyne Gaussian quantum tomography with low Detection Efficiency
New Journal of Physics, 2014Co-Authors: Martina Esposito, Fabio Benatti, Roberto Floreanini, Stefano Olivares, Francesco Randi, Kelvin Titimbo, Marco Pividori, Fabio Novelli, Federico Cilento, Fulvio ParmigianiAbstract:Pulsed homodyne quantum tomography usually requires a high Detection Efficiency limiting its applicability in quantum optics. Here, it is shown that the presence of low Detection Efficiency ($
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pulsed homodyne gaussian quantum tomography with low Detection Efficiency
New Journal of Physics, 2014Co-Authors: Martina Esposito, Fabio Benatti, Roberto Floreanini, Stefano Olivares, Francesco Randi, Kelvin Titimbo, Marco Pividori, Fabio Novelli, Federico CilentoAbstract:Pulsed homodyne quantum tomography usually requires a high Detection Efficiency, limiting its applicability in quantum optics. Here, it is shown that the presence of low Detection Efficiency () does not prevent the tomographic reconstruction of quantum states of light, specifically, of Gaussian states. This result is obtained by applying the so-called ?minimax? adaptive reconstruction of the Wigner function to pulsed homodyne Detection. In particular, we prove, by both numerical and real experiments, that an effective discrimination of different Gaussian quantum states can be achieved. Our finding paves the way to a more extensive use of quantum tomographic methods, even in physical situations in which high Detection Efficiency is unattainable.
Martina Esposito - One of the best experts on this subject based on the ideXlab platform.
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Pulsed homodyne Gaussian quantum tomography with low Detection Efficiency
New Journal of Physics, 2014Co-Authors: Martina Esposito, Fabio Benatti, Roberto Floreanini, Stefano Olivares, Francesco Randi, Kelvin Titimbo, Marco Pividori, Fabio Novelli, Federico Cilento, Fulvio ParmigianiAbstract:Pulsed homodyne quantum tomography usually requires a high Detection Efficiency limiting its applicability in quantum optics. Here, it is shown that the presence of low Detection Efficiency ($
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pulsed homodyne gaussian quantum tomography with low Detection Efficiency
New Journal of Physics, 2014Co-Authors: Martina Esposito, Fabio Benatti, Roberto Floreanini, Stefano Olivares, Francesco Randi, Kelvin Titimbo, Marco Pividori, Fabio Novelli, Federico CilentoAbstract:Pulsed homodyne quantum tomography usually requires a high Detection Efficiency, limiting its applicability in quantum optics. Here, it is shown that the presence of low Detection Efficiency () does not prevent the tomographic reconstruction of quantum states of light, specifically, of Gaussian states. This result is obtained by applying the so-called ?minimax? adaptive reconstruction of the Wigner function to pulsed homodyne Detection. In particular, we prove, by both numerical and real experiments, that an effective discrimination of different Gaussian quantum states can be achieved. Our finding paves the way to a more extensive use of quantum tomographic methods, even in physical situations in which high Detection Efficiency is unattainable.
Roberto Floreanini - One of the best experts on this subject based on the ideXlab platform.
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Pulsed homodyne Gaussian quantum tomography with low Detection Efficiency
New Journal of Physics, 2014Co-Authors: Martina Esposito, Fabio Benatti, Roberto Floreanini, Stefano Olivares, Francesco Randi, Kelvin Titimbo, Marco Pividori, Fabio Novelli, Federico Cilento, Fulvio ParmigianiAbstract:Pulsed homodyne quantum tomography usually requires a high Detection Efficiency limiting its applicability in quantum optics. Here, it is shown that the presence of low Detection Efficiency ($
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pulsed homodyne gaussian quantum tomography with low Detection Efficiency
New Journal of Physics, 2014Co-Authors: Martina Esposito, Fabio Benatti, Roberto Floreanini, Stefano Olivares, Francesco Randi, Kelvin Titimbo, Marco Pividori, Fabio Novelli, Federico CilentoAbstract:Pulsed homodyne quantum tomography usually requires a high Detection Efficiency, limiting its applicability in quantum optics. Here, it is shown that the presence of low Detection Efficiency () does not prevent the tomographic reconstruction of quantum states of light, specifically, of Gaussian states. This result is obtained by applying the so-called ?minimax? adaptive reconstruction of the Wigner function to pulsed homodyne Detection. In particular, we prove, by both numerical and real experiments, that an effective discrimination of different Gaussian quantum states can be achieved. Our finding paves the way to a more extensive use of quantum tomographic methods, even in physical situations in which high Detection Efficiency is unattainable.
Stefano Olivares - One of the best experts on this subject based on the ideXlab platform.
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Pulsed homodyne Gaussian quantum tomography with low Detection Efficiency
New Journal of Physics, 2014Co-Authors: Martina Esposito, Fabio Benatti, Roberto Floreanini, Stefano Olivares, Francesco Randi, Kelvin Titimbo, Marco Pividori, Fabio Novelli, Federico Cilento, Fulvio ParmigianiAbstract:Pulsed homodyne quantum tomography usually requires a high Detection Efficiency limiting its applicability in quantum optics. Here, it is shown that the presence of low Detection Efficiency ($
-
pulsed homodyne gaussian quantum tomography with low Detection Efficiency
New Journal of Physics, 2014Co-Authors: Martina Esposito, Fabio Benatti, Roberto Floreanini, Stefano Olivares, Francesco Randi, Kelvin Titimbo, Marco Pividori, Fabio Novelli, Federico CilentoAbstract:Pulsed homodyne quantum tomography usually requires a high Detection Efficiency, limiting its applicability in quantum optics. Here, it is shown that the presence of low Detection Efficiency () does not prevent the tomographic reconstruction of quantum states of light, specifically, of Gaussian states. This result is obtained by applying the so-called ?minimax? adaptive reconstruction of the Wigner function to pulsed homodyne Detection. In particular, we prove, by both numerical and real experiments, that an effective discrimination of different Gaussian quantum states can be achieved. Our finding paves the way to a more extensive use of quantum tomographic methods, even in physical situations in which high Detection Efficiency is unattainable.