Quantum theory allows for randomness generation in a device-independent setting, where no detailed description of the experimental device is required. Here we derive a general upper bound on the amount of randomness that can be generated in such a setting. Our bound applies to any black-box scenario, thus covering a wide range of scenarios from partially characterised to completely uncharacterised devices. Specifically, we prove that the number of random bits that can be generated is limited by the number of different input states that enter the measurement device. We show explicitly that our bound is tight in the simplest case. More generally, our work indicates that the prospects of generating a large amount of randomness by using high-di...
International audienceThe intrinsic non-locality of correlations in Quantum Mechanics allow us to ce...
4+18 pages, 2 figuresInternational audienceTwo parties sharing entangled quantum systems can generat...
The semi-device-independent approach provides a framework for prepare-and-measure quantum protocols ...
The concept of randomness plays an important part in many disciplines. On the one hand, the question...
Measurements on entangled quantum systems necessarily yield outcomes that are intrinsically unpredic...
Device-independent randomness generation and quantum key distribution protocols rely on a fundamenta...
Randomness is a central feature of quantum mechanics and an invaluable resource for both classical a...
The generation of certifiable randomness is one of the most promising applications of quantum techno...
We introduce a protocol through which a pair of quantum mechanical devices may be used to generate n...
We introduce a protocol through which a pair of quantum mechanical devices may be used to generate n...
According to quantum theory, the outcomes obtained by measuring an entangled state necessarily exhib...
We introduce a protocol through which a pair of quantum mechanical devices may be used to generate n...
The generation of random number sequences, that is, of unpredictable sequences free from any structu...
We introduce a protocol through which a pair of quantum mechanical devices may be used to generate n...
Quantum random number generators can provide genuine randomness by appealing to the fundamental prin...
International audienceThe intrinsic non-locality of correlations in Quantum Mechanics allow us to ce...
4+18 pages, 2 figuresInternational audienceTwo parties sharing entangled quantum systems can generat...
The semi-device-independent approach provides a framework for prepare-and-measure quantum protocols ...
The concept of randomness plays an important part in many disciplines. On the one hand, the question...
Measurements on entangled quantum systems necessarily yield outcomes that are intrinsically unpredic...
Device-independent randomness generation and quantum key distribution protocols rely on a fundamenta...
Randomness is a central feature of quantum mechanics and an invaluable resource for both classical a...
The generation of certifiable randomness is one of the most promising applications of quantum techno...
We introduce a protocol through which a pair of quantum mechanical devices may be used to generate n...
We introduce a protocol through which a pair of quantum mechanical devices may be used to generate n...
According to quantum theory, the outcomes obtained by measuring an entangled state necessarily exhib...
We introduce a protocol through which a pair of quantum mechanical devices may be used to generate n...
The generation of random number sequences, that is, of unpredictable sequences free from any structu...
We introduce a protocol through which a pair of quantum mechanical devices may be used to generate n...
Quantum random number generators can provide genuine randomness by appealing to the fundamental prin...
International audienceThe intrinsic non-locality of correlations in Quantum Mechanics allow us to ce...
4+18 pages, 2 figuresInternational audienceTwo parties sharing entangled quantum systems can generat...
The semi-device-independent approach provides a framework for prepare-and-measure quantum protocols ...