Estimating stellar parameters from LAMOST low-resolution spectra

被引:9
作者
Li, Xiangru [1 ]
Lin, Boyu [1 ]
机构
[1] South China Normal Univ, Sch Comp Sci, 55 West Yat Sen Ave, Guangzhou 510631, Peoples R China
基金
中国国家自然科学基金;
关键词
methods; data analysis - methods; statistical; -; stars; abundances; fundamental parameters; ATMOSPHERIC PARAMETERS; ABUNDANCES;
D O I
10.1093/mnras/stad831
中图分类号
P1 [天文学];
学科分类号
0704 ;
摘要
The Large Sky Area Multi-Object Fiber Spectroscopic Telescope (LAMOST) has acquired tens of millions of low-resolution spectra of stars. This paper investigates the parameter estimation problem for these spectra. To this end, we propose the deep learning model StarGRU network (StarGRUNet). This network is applied to estimate the stellar atmospheric physical parameters and 13 elemental abundances from LAMOST low-resolution spectra. On the spectra with signal-to-noise ratios greater than or equal to 5, the estimation precisions are 94 K and 0.16 dex on T-eff and log g respectively, 0.07 to 0.10 dex on [C/H], [Mg/H], [Al/H], [Si/H], [Ca/H], [Ni/H] and [Fe/H], 0.10 to 0.16 dex on [O/H], [S/H], [K/H], [Ti/H] and [Mn/H], and 0.18 and 0.22 dex on [N/H] and [Cr/H]. The model shows advantages over other available models and high consistency with high-resolution surveys. We released the estimated catalogue computed from about 8.21 million low-resolution spectra in LAMOST DR8, code, trained model, and experimental data for astronomical science exploration and data processing algorithm research.
引用
收藏
页码:6354 / 6367
页数:14
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