Photometric redshifts for the S-PLUS Survey: Is machine learning up to the task?

被引:21
作者
Lima, E. V. R. [1 ]
Sodre Jr, L. [1 ]
Bom, C. R. [2 ,3 ]
Teixeira, G. S. M. [2 ]
Nakazono, L. [1 ]
Buzzo, M. L. [1 ]
Queiroz, C. [4 ,5 ]
Herpich, F. R. [1 ]
Nilo Castellon, J. L. [6 ,7 ]
Dantas, M. L. L. [8 ]
Dors Jr, O. L. [9 ]
Thom de Souza, R. C. [10 ,11 ,12 ]
Akras, S. [13 ]
Jimenez-Teja, Y. [14 ]
Kanaan, A. [15 ]
Ribeiro, T. [16 ]
Schoennell, W. [17 ]
机构
[1] Univ Sao Paulo, Inst Astron Geofis & Ciencias Atmosfer, Rua Matao 1226, BR-05508090 Sao Paulo, SP, Brazil
[2] Ctr Brasileiro Pesquisas Fis, Rua Dr Xavier Sigaud 150, BR-22290180 Rio De Janeiro, RJ, Brazil
[3] Ctr Fed Educ Tecnol Celso Suckow Fonseca, Rodovia Mario Covas,Lote J2, BR-23810000 Itaguai, RJ, Brazil
[4] Univ Sao Paulo, Inst Fis, Rua Matao 1371, BR-05508090 Sao Paulo, SP, Brazil
[5] Univ Fed Rio Grande do Sul, Inst Fis, Dept Astron, Av Bento Goncalves 9500, BR-91501970 Porto Alegre, RS, Brazil
[6] Univ La Serena, Direcc Invest & Desarrollo, Ave Juan Cisternas 120, La Serena, Chile
[7] SIGMA Space Sci & Technol, CL-1700000 La Serena, Chile
[8] Polish Acad Sci, Nicolaus Copernicus Astron Ctr, Ul Bartycka 18, PL-00716 Warsaw, Poland
[9] Univ Vale Paraiba, Av Shishima Hifumi 2911, BR-12244000 Sao Jose Dos Campos, SP, Brazil
[10] Univ Estadual Maringa, Programa Posgrad Ciencia Comp, Av Colombo 5790, BR-87020900 Maringa, Parana, Brazil
[11] Univ Estadual Maringa, Programa Posgrad Engn Prod, Av Colombo 5790, BR-87020900 Maringa, Parana, Brazil
[12] Univ Fed Parana, Campus Jandaia do Sul, BR-86900900 Jandaia Do Sul, Parana, Brazil
[13] Natl Observ Athens, Inst Astron Astrophys Space Applicat & Remote Sen, GR-15236 Penteli, Greece
[14] CSIC, Inst Astrofis Andalucia, Glorieta Astron S-N, E-18008 Granada, Spain
[15] Univ Fed Santa Catarina, Dept Fis, BR-88040900 Florianopolis, SC, Brazil
[16] Natl Opt Astron Observ, 950 North Cherry Ave, Tucson, AZ 85719 USA
[17] GMTO Corp, N Halstead St 465,Suite 250, Pasadena, CA 91107 USA
基金
美国国家航空航天局; 巴西圣保罗研究基金会; 美国安德鲁·梅隆基金会;
关键词
Galaxies: distances and redshifts; Methods: data analysis; Software: development; Techniques: photometric; Surveys; GAUSSIAN-PROCESSES; INFORMATION; PRECISION; BANDS; MODEL;
D O I
10.1016/j.ascom.2021.100510
中图分类号
P1 [天文学];
学科分类号
0704 ;
摘要
The Southern Photometric Local Universe Survey (S-PLUS) is a novel project that aims to map the Southern Hemisphere using a twelve filter system, comprising five broad-band SDSS-like filters and seven narrow-band filters optimized for important stellar features in the local universe.In this paper we use the photometry and morphological information from the first S-PLUS data release (S-PLUS DR1) cross-matched to unWISE data and spectroscopic redshifts from Sloan Digital Sky Survey DR15. We explore three different machine learning methods (Gaussian Processes with GPz and two Deep Learning models made with TensorFlow) and compare them with the currently used template-fitting method in the S-PLUS DR1 to address whether machine learning methods can take advantage of the twelve filter system for photometric redshift prediction. Using tests for accuracy for both single-point estimates such as the calculation of the scatter, bias, and outlier fraction, and probability distribution functions (PDFs) such as the Probability Integral Transform (PIT), the Continuous Ranked Probability Score (CRPS) and the Odds distribution, we conclude that a deep-learning method using a combination of a Bayesian Neural Network and a Mixture Density Network offers the most accurate photometric redshifts for the current test sample. It achieves single-point photometric redshifts with scatter (& USigma;(NMAD)) of 0.023, normalized bias of -0.001, and outlier fraction of 0.64% for galaxies with r_auto magnitudes between 16 and 21. (c) 2021 Elsevier B.V. All rights reserved.
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页数:15
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