8 citations · 9 across the 8 of their papers we have counts for
7 papers · 1 filter
Thermodynamic Advantage of Quantum Time-Reversal
Alexander B. Boyd, Paul M. Riechers
Classical computations inherently require energy dissipation that increases significantly as the reliability of the computation improves. This dissipation arises when transitions b…
Is stochastic thermodynamics the key to understanding the energy costs of computation?
David Wolpert, Jan Korbel, Christopher Lynn +16
The relationship between the thermodynamic and computational characteristics of dynamical physical systems has been a major theoretical interest since at least the 19th century, an…
Time Symmetries of Memory Determine Thermodynamic Efficiency
Alexander B. Boyd, Paul M. Riechers, Gregory W. Wimsatt +2
While Landauer's Principle sets a lower bound for the work required for a computation, that work is recoverable for efficient computations. However, practical physical computers, s…
Refining Landauer's Stack: Balancing Error and Dissipation When Erasing Information
Gregory W. Wimsatt, Alexander B. Boyd, Paul M. Riechers +1
Nonequilibrium information thermodynamics determines the minimum energy dissipation to reliably erase memory under time-symmetric control protocols. We demonstrate that its bounds…
Balancing Error and Dissipation in Computing
P. M. Riechers, A. B. Boyd, G. W. Wimsatt +1
Modern digital electronics support remarkably reliable computing, especially given the challenge of controlling nanoscale logical components that interact in fluctuating environmen…
Fraudulent White Noise: Flat power spectra belie arbitrarily complex processes
P. M. Riechers, J. P. Crutchfield
Power spectral densities are a common, convenient, and powerful way to analyze signals. So much so that they are now broadly deployed across the sciences and engineering---from qua…