Energy and time determine scaling in biological and computer designs

Author:

Moses Melanie123ORCID,Bezerra George1,Edwards Benjamin1,Brown James23,Forrest Stephanie123

Affiliation:

1. Department of Computer Science, University of New Mexico, Albuquerque, NM, USA

2. Department of Biology, University of New Mexico, Albuquerque, NM, USA

3. The Santa Fe Institute, Santa Fe, NM, USA

Abstract

Metabolic rate in animals and power consumption in computers are analogous quantities that scale similarly with size. We analyse vascular systems of mammals and on-chip networks of microprocessors, where natural selection and human engineering, respectively, have produced systems that minimize both energy dissipation and delivery times. Using a simple network model that simultaneously minimizes energy and time, our analysis explains empirically observed trends in the scaling of metabolic rate in mammals and power consumption and performance in microprocessors across several orders of magnitude in size. Just as the evolutionary transitions from unicellular to multicellular animals in biology are associated with shifts in metabolic scaling, our model suggests that the scaling of power and performance will change as computer designs transition to decentralized multi-core and distributed cyber-physical systems. More generally, a single energy–time minimization principle may govern the design of many complex systems that process energy, materials and information. This article is part of the themed issue ‘The major synthetic evolutionary transitions’.

Funder

NSF

DARPA

AFOSR

UNM PIBBs programme through NIH

Publisher

The Royal Society

Subject

General Agricultural and Biological Sciences,General Biochemistry, Genetics and Molecular Biology

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