We consider the problem of testing the dimension of uncharacterized classical and quantum systems in a prepare-and-measure setup. Here we assume the preparation and measurement devices to be independent, thereby making the problem nonconvex. We present a simple method for generating nonlinear dimension witnesses for systems of arbitrary dimension. The simplest of our witnesses is highly robust to technical imperfections, and can certify the use of qubits in the presence of arbitrary noise and arbitrarily low detection efficiency. Finally, we show that this witness can be used to certify the presence of randomness, suggesting applications in quantum information processing
Abstract We address the problem of testing the quantumness of two-dimensional systems in the prepare...
We report on a new class of dimension witnesses, based on quantum random access codes, which are a f...
Abstract Bell nonlocality as a resource for device-independent certification schemes has been studie...
We consider the problem of testing the dimension of uncharacterized classical and quantum systems in...
Dimension witnesses allow one to test the dimension of an unknown physical system in a device-indepe...
We address the problem of testing the dimensionality of classical and quantum systems in a "blackbox...
Abstract We propose a scheme to implement general quantum measurements, also known as Positive Opera...
The goal of self-testing is to characterize an a priori unknown quantum system based solely on measu...
We show that the phenomenon of quantum contextuality can be used to certify lower bounds on the dime...
The Hilbert space dimension of a quantum system is the most basic quantifier of its information cont...
Estimating the dimension of an Hilbert space is an important component of quantum system identificat...
This work analyzes correlations arising from quantum systems subject to sequential projective measur...
Certification of quantum devices received from unknown providers is a primary requirement before uti...
Self-testing represents the strongest form of certification of a quantum system. Here we investigate...
A dimension witness is a criterion that sets a lower bound on the dimension needed to reproduce the ...
Abstract We address the problem of testing the quantumness of two-dimensional systems in the prepare...
We report on a new class of dimension witnesses, based on quantum random access codes, which are a f...
Abstract Bell nonlocality as a resource for device-independent certification schemes has been studie...
We consider the problem of testing the dimension of uncharacterized classical and quantum systems in...
Dimension witnesses allow one to test the dimension of an unknown physical system in a device-indepe...
We address the problem of testing the dimensionality of classical and quantum systems in a "blackbox...
Abstract We propose a scheme to implement general quantum measurements, also known as Positive Opera...
The goal of self-testing is to characterize an a priori unknown quantum system based solely on measu...
We show that the phenomenon of quantum contextuality can be used to certify lower bounds on the dime...
The Hilbert space dimension of a quantum system is the most basic quantifier of its information cont...
Estimating the dimension of an Hilbert space is an important component of quantum system identificat...
This work analyzes correlations arising from quantum systems subject to sequential projective measur...
Certification of quantum devices received from unknown providers is a primary requirement before uti...
Self-testing represents the strongest form of certification of a quantum system. Here we investigate...
A dimension witness is a criterion that sets a lower bound on the dimension needed to reproduce the ...
Abstract We address the problem of testing the quantumness of two-dimensional systems in the prepare...
We report on a new class of dimension witnesses, based on quantum random access codes, which are a f...
Abstract Bell nonlocality as a resource for device-independent certification schemes has been studie...