Experimental statistical signature of many-body quantum interference
arXiv:2103.16418 · doi:10.1038/s41566-018-0097-4
Abstract
Multi-particle interference is an essential ingredient for fundamental quantum mechanics phenomena and for quantum information processing to provide a computational advantage, as recently emphasized by Boson Sampling experiments. Hence, developing a reliable and efficient technique to witness its presence is pivotal towards the practical implementation of quantum technologies. Here we experimentally identify genuine many-body quantum interference via a recent efficient protocol, which exploits statistical signatures at the output of a multimode quantum device. We successfully apply the test to validate three-photon experiments in an integrated photonic circuit, providing an extensive analysis on the resources required to perform it. Moreover, drawing upon established techniques of machine learning, we show how such tools help to identify the - a priori unknown - optimal features to witness these signatures. Our results provide evidence on the efficacy and feasibility of the method, paving the way for its adoption in large-scale implementations.
15 pages, 12 figures
References in corpus (6)
Cited by in corpus (10)
- Integrated Photonic Quantum Technologies
- Boson sampling with 20 input photons in 60-mode interferometers at state spaces
- High-dimensional quantum communication: benefits, progress, and future challenges
- Phase-Programmable Gaussian Boson Sampling Using Stimulated Squeezed Light
- Machine learning-based classification of vector vortex beams
- Femtosecond laser micromachining for integrated quantum photonics
- On Testing Quantum Programs
- Information processing at the speed of light
- Witnesses of coherence and dimension from multiphoton indistinguishability tests
- Many-body interference in bosonic dynamics