We show how we can obtain improved resolution when imaging an object by filtering high-resolution quantum states from impinging classical radiation. The method allows one to beat the Rayleigh diffraction bound that is intrinsic in any imaging apparatus. It is based on using focused classical illumination sources and A'-photon coincidence detection
Many present day quantum optics experiments, particularly in optical quantum information processing,...
We implement a general imaging method by measuring the complex degree of coherence using linear opti...
The spatial resolution of an optical system is limited by diffraction. Various schemes have been pro...
We show how we can obtain improved resolution when imaging an object by filtering high-resolution qu...
The spatial resolution of an imaging apparatus is limited by the Rayleigh diffraction bound, a conse...
The spatial resolution of an imaging apparatus is limited by the Rayleigh diffraction bound, a conse...
Using multiphoton entangled states, we demonstrate improving spatial imaging resolution beyond the R...
One of the goals of a traditional imaging system is to acquire image of the scenewith the highest-re...
I propose a quantum imaging method that can beat the Rayleigh-Abbe diffraction limit and achieve de ...
Superresolution imaging provides insight into physical systems that are smaller or more distant than...
We investigate analytically and numerically the role of quantum fluctuations in reconstruction of op...
The optical diffraction limit imposes a bound on imaging resolution in classical optics. Over the la...
We consider passive imaging tasks involving discrimination between known candidate objects and inves...
Quantum imaging promises increased imaging performance over classical protocols. However, there are ...
We establish the conditions to attain the ultimate resolution predicted by quantum estimation theory...
Many present day quantum optics experiments, particularly in optical quantum information processing,...
We implement a general imaging method by measuring the complex degree of coherence using linear opti...
The spatial resolution of an optical system is limited by diffraction. Various schemes have been pro...
We show how we can obtain improved resolution when imaging an object by filtering high-resolution qu...
The spatial resolution of an imaging apparatus is limited by the Rayleigh diffraction bound, a conse...
The spatial resolution of an imaging apparatus is limited by the Rayleigh diffraction bound, a conse...
Using multiphoton entangled states, we demonstrate improving spatial imaging resolution beyond the R...
One of the goals of a traditional imaging system is to acquire image of the scenewith the highest-re...
I propose a quantum imaging method that can beat the Rayleigh-Abbe diffraction limit and achieve de ...
Superresolution imaging provides insight into physical systems that are smaller or more distant than...
We investigate analytically and numerically the role of quantum fluctuations in reconstruction of op...
The optical diffraction limit imposes a bound on imaging resolution in classical optics. Over the la...
We consider passive imaging tasks involving discrimination between known candidate objects and inves...
Quantum imaging promises increased imaging performance over classical protocols. However, there are ...
We establish the conditions to attain the ultimate resolution predicted by quantum estimation theory...
Many present day quantum optics experiments, particularly in optical quantum information processing,...
We implement a general imaging method by measuring the complex degree of coherence using linear opti...
The spatial resolution of an optical system is limited by diffraction. Various schemes have been pro...