Exo-Daisy World: Revisiting Gaia Theory through an Informational Architecture Perspective

Fuente: arXiv
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Autores principales: Sowinski, Damian R, Ghoshal, Gourab, Frank, Adam
Formato: Preprint
Publicado: 2024
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author Sowinski, Damian R
Ghoshal, Gourab
Frank, Adam
author_facet Sowinski, Damian R
Ghoshal, Gourab
Frank, Adam
contents The Daisy World model has long served as a foundational framework for understanding the self-regulation of planetary biospheres, providing insights into the feedback mechanisms that may govern inhabited exoplanets. In this study, we extend the classic Daisy World model through the lens of Semantic Information Theory (SIT), aiming to characterize the information flow between the biosphere and planetary environment -- what we term the \emph{information architecture} of Daisy World systems. Our objective is to develop novel methodologies for analyzing the evolution of coupled planetary systems, including biospheres and geospheres, with implications for astrobiological observations and the identification of agnostic biosignatures. To operationalize SIT in this context, we introduce a version of the Daisy World model tailored to reflect potential conditions on M-dwarf exoplanets, formulating a system of stochastic differential equations that describe the co-evolution of the daisies and their planetary environment. Analysis of this Exo-Daisy World model reveals how correlations between the biosphere and environment intensify with rising stellar luminosity, and how these correlations correspond to distinct phases of information exchange between the coupled systems. This \emph{rein control} provides a quantitative description of the informational feedback between the biosphere and its host planet. Finally, we discuss the broader implications of our approach for developing detailed ExoGaia models of inhabited exoplanetary systems, proposing new avenues for interpreting astrobiological data and exploring biosignature candidates.
format Preprint
id arxiv_https___arxiv_org_abs_2411_03421
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Exo-Daisy World: Revisiting Gaia Theory through an Informational Architecture Perspective
Sowinski, Damian R
Ghoshal, Gourab
Frank, Adam
Earth and Planetary Astrophysics
Adaptation and Self-Organizing Systems
Biological Physics
Popular Physics
Populations and Evolution
The Daisy World model has long served as a foundational framework for understanding the self-regulation of planetary biospheres, providing insights into the feedback mechanisms that may govern inhabited exoplanets. In this study, we extend the classic Daisy World model through the lens of Semantic Information Theory (SIT), aiming to characterize the information flow between the biosphere and planetary environment -- what we term the \emph{information architecture} of Daisy World systems. Our objective is to develop novel methodologies for analyzing the evolution of coupled planetary systems, including biospheres and geospheres, with implications for astrobiological observations and the identification of agnostic biosignatures. To operationalize SIT in this context, we introduce a version of the Daisy World model tailored to reflect potential conditions on M-dwarf exoplanets, formulating a system of stochastic differential equations that describe the co-evolution of the daisies and their planetary environment. Analysis of this Exo-Daisy World model reveals how correlations between the biosphere and environment intensify with rising stellar luminosity, and how these correlations correspond to distinct phases of information exchange between the coupled systems. This \emph{rein control} provides a quantitative description of the informational feedback between the biosphere and its host planet. Finally, we discuss the broader implications of our approach for developing detailed ExoGaia models of inhabited exoplanetary systems, proposing new avenues for interpreting astrobiological data and exploring biosignature candidates.
title Exo-Daisy World: Revisiting Gaia Theory through an Informational Architecture Perspective
topic Earth and Planetary Astrophysics
Adaptation and Self-Organizing Systems
Biological Physics
Popular Physics
Populations and Evolution
url https://arxiv.org/abs/2411.03421