The free energy requirements of biological organisms; implications for evolution
Abstract
Recent advances in nonequilibrium statistical physics have provided unprecedented insight into the thermodynamics of dynamic processes. The author recently used these advances to extend Landauer's semi-formal reasoning concerning the thermodynamics of bit erasure, to derive the minimal free energy required to implement an arbitrary computation. Here, I extend this analysis, deriving the minimal free energy required by an organism to run a given (stochastic) map from its sensor inputs to its actuator outputs. I use this result to calculate the input-output map of an organism that optimally trades off the free energy needed to run with the phenotypic fitness that results from implementing . I end with a general discussion of the limits imposed on the rate of the terrestrial biosphere's information processing by the flux of sunlight on the Earth.
Keywords
Cite
@article{arxiv.1603.09419,
title = {The free energy requirements of biological organisms; implications for evolution},
author = {David H. Wolpert},
journal= {arXiv preprint arXiv:1603.09419},
year = {2016}
}
Comments
19 pages, 0 figures, presented at 2015 NIMBIoS workshop on "Information and entropy in biological systems"