One-Dimensional Convolutional Neural Networks for Detecting Transiting Exoplanets

Author:

Iglesias Álvarez Santiago12ORCID,Díez Alonso Enrique13ORCID,Sánchez Rodríguez María Luisa12ORCID,Rodríguez Rodríguez Javier14ORCID,Sánchez Lasheras Fernando13ORCID,de Cos Juez Francisco Javier14ORCID

Affiliation:

1. Instituto Universitario de Ciencias y Tecnologías Espaciales de Asturias (ICTEA), University of Oviedo, C. Independencia 13, 33004 Oviedo, Spain

2. Departamento de Física, Universidad de Oviedo, 33007 Oviedo, Spain

3. Departamento de Matemáticas, Facultad de Ciencias, Universidad de Oviedo, 33007 Oviedo, Spain

4. Departamento de Explotación y Prospección de Minas, Universidad de Oviedo, 33004 Oviedo, Spain

Abstract

The transit method is one of the most relevant exoplanet detection techniques, which consists of detecting periodic eclipses in the light curves of stars. This is not always easy due to the presence of noise in the light curves, which is induced, for example, by the response of a telescope to stellar flux. For this reason, we aimed to develop an artificial neural network model that is able to detect these transits in light curves obtained from different telescopes and surveys. We created artificial light curves with and without transits to try to mimic those expected for the extended mission of the Kepler telescope (K2) in order to train and validate a 1D convolutional neural network model, which was later tested, obtaining an accuracy of 99.02% and an estimated error (loss function) of 0.03. These results, among others, helped to confirm that the 1D CNN is a good choice for working with non-phased-folded Mandel and Agol light curves with transits. It also reduces the number of light curves that have to be visually inspected to decide if they present transit-like signals and decreases the time needed for analyzing each (with respect to traditional analysis).

Funder

Proyecto Plan Regional by FUNDACION PARA LA INVESTIGACION CIENTIFICA Y TECNICA FICYT

Plan Nacional by Ministerio de Ciencia, Innovación y Universidades, Spain

Publisher

MDPI AG

Subject

Geometry and Topology,Logic,Mathematical Physics,Algebra and Number Theory,Analysis

Reference53 articles.

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Cited by 3 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. Detection of transiting exoplanets and phase-folding their host star’s light curves from K2 data with 1D-CNN;Logic Journal of the IGPL;2024-09-09

2. Computing Transiting Exoplanet Parameters with 1D Convolutional Neural Networks;Axioms;2024-01-26

3. Transiting Exoplanet Detection Through 1D Convolutional Neural Networks;Distributed Computing and Artificial Intelligence, Special Sessions II - Intelligent Systems Applications, 20th International Conference;2023

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