ICTS:31115

Parameter estimation for quantum jump unraveling

APA

(2025). Parameter estimation for quantum jump unraveling. SciVideos. https://youtube.com/live/2rYfULHkUtk

MLA

Parameter estimation for quantum jump unraveling. SciVideos, Feb. 03, 2025, https://youtube.com/live/2rYfULHkUtk

BibTex

          @misc{ scivideos_ICTS:31115,
            doi = {},
            url = {https://youtube.com/live/2rYfULHkUtk},
            author = {},
            keywords = {},
            language = {en},
            title = {Parameter estimation for quantum jump unraveling},
            publisher = {},
            year = {2025},
            month = {feb},
            note = {ICTS:31115 see, \url{https://scivideos.org/index.php/icts-tifr/31115}}
          }
          
Marco Radaelli
Talk numberICTS:31115
Source RepositoryICTS-TIFR

Abstract

We consider the estimation of parameters encoded in the measurement record of a continuously monitored quantum system in the jump unraveling. This unraveling picture corresponds to a single-shot scenario, where information is continuously gathered. Here, it is generally difficult to assess the precision of the estimation procedure via the Fisher Information due to intricate temporal correlations and memory effects. In this paper we provide a full set of solutions to this problem. First, for multi-channel renewal processes we relate the Fisher Information to an underlying Markov chain and derive a easily computable expression for it. For non-renewal processes, we introduce a new algorithm that combines two methods: the monitoring operator method for metrology and the Gillespie algorithm which allows for efficient sampling of a stochastic form of the Fisher Information along individual quantum trajectories. We show that this stochastic Fisher Information satisfies useful properties related to estimation in the single-shot scenario. Finally, we consider the case where some information is lost in data compression/post-selection, and provide tools for computing the Fisher Information in this case. All scenarios are illustrated with instructive examples from quantum optics and condensed matter.