Maximum one-shot dissipated work from Renyi divergences
Abstract
Thermodynamics describes large-scale, slowly evolving systems. Two modern approaches generalize thermodynamics: fluctuation theorems, which concern finite-time nonequilibrium processes, and one-shot statistical mechanics, which concerns small scales and finite numbers of trials. Combining these approaches, we calculate a one-shot analog of the average dissipated work defined in fluctuation contexts: the cost of performing a protocol in finite time instead of quasistatically. The average dissipated work has been shown to be proportional to a relative entropy between phase-space densities, to a relative entropy between quantum states, and to a relative entropy between probability distributions over possible values of work. We derive one-shot analogs of all three equations, demonstrating that the order-infinity Renyi divergence is proportional to the maximum possible dissipated work in each case. These one-shot analogs of fluctuation-theorem results contribute to the unification of these two toolkits for small-scale, nonequilibrium statistical physics.
Cite
@article{arxiv.1505.06217,
title = {Maximum one-shot dissipated work from Renyi divergences},
author = {Nicole Yunger Halpern and Andrew J. P. Garner and Oscar C. O. Dahlsten and Vlatko Vedral},
journal= {arXiv preprint arXiv:1505.06217},
year = {2018}
}
Comments
8 pages. Close to published version