arXiv · 1302.3470
A holographic bound on the total number of computations in the visible Universe
Abstract
Information $I$ in holographic imaging of massive particles by star-like screens is shown to represent the probability of detection based on their propagator. Results are derived for screens in the shape of a plane, cube and sphere from unitarity in the exponentially small transition probability for a detection outside. We derive $I=2πΔφ$ in $\log2$ bits for the imaging of a particle by a spherical screen at a relative de Broglie phase $Δφ$. Encoding mass, charge, angular momentum or radiation requires at minimum four bits. Minimal screens at maximal information density hereby recover Reissner-Nordström and extremal Kerr black holes. Applied to the visible Universe, the Hubble flow of galaxies through the cosmological event horizon leaves $10^{121}$ computations in the future.
Explore related subjects
Keep this discovery
Maurice H. P. M. van Putten. 2015-03-26. A holographic bound on the total number of computations in the visible Universe. https://doi.org/10.1142/s0218271815500248
Cite the original work for its findings. Save a collection to share your selection of sources.