Evolutionary Computation in Astronomy and Astrophysics: A Review
Jos\'e A. Garc\'ia Guti\'errez, Carlos Cotta, and Antonio J., Fern\'andez-Leiva

TL;DR
This review explores how evolutionary computation techniques are effectively applied to complex optimization and data analysis problems in astronomy and astrophysics, highlighting recent advances and future research directions.
Contribution
The paper provides a comprehensive overview of EC applications in astronomy, including recent developments, and offers guidelines for future research in this interdisciplinary area.
Findings
EC techniques outperform traditional methods on NP-hard problems
Successful application of EC in parameter estimation and automatic learning
EC methods show promise in handling large-scale astrophysical data
Abstract
In general Evolutionary Computation (EC) includes a number of optimization methods inspired by biological mechanisms of evolution. The methods catalogued in this area use the Darwinian principles of life evolution to produce algorithms that returns high quality solutions to hard-to-solve optimization problems. The main strength of EC is precisely that they provide good solutions even if the computational resources (e.g., running time) are limited. Astronomy and Astrophysics are two fields that often require optimizing problems of high complexity or analyzing a huge amount of data and the so-called complete optimization methods are inherently limited by the size of the problem/data. For instance, reliable analysis of large amounts of data is central to modern astrophysics and astronomical sciences in general. EC techniques perform well where other optimization methods are inherently…
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Taxonomy
TopicsMetaheuristic Optimization Algorithms Research · Evolutionary Algorithms and Applications · Artificial Immune Systems Applications
