Atmospheric parameters of Cepheids from flux ratios with ATHOS: I. The temperature scale
B. Lemasle, M. Hanke, J. Storm, G. Bono, and E. K. Grebel

TL;DR
This paper introduces a new, highly precise temperature scale for classical Cepheids using flux ratios and machine learning, improving stellar characterization and aiding cosmological measurements.
Contribution
A novel flux ratio-based temperature scale for Cepheids, achieving high precision and accuracy, applicable to low-resolution spectra, and useful for large spectroscopic surveys.
Findings
Identified 143 flux ratios for temperature determination
Achieved temperature precision of a few Kelvin
Accuracy better than 150 Kelvin
Abstract
Context: The effective temperature is a key parameter governing the properties of a star. For stellar chemistry, it has the strongest impact on the accuracy of the abundances derived. Since Cepheids are pulsating stars, determining their effective temperature is more complicated that in the case of non-variable stars. Aims: We want to provide a new temperature scale for classical Cepheids, with a high precision and full control of the systematics. Methods: Using a data-driven machine learning technique employing observed spectra, and taking great care to accurately phase single-epoch observations, we have tied flux ratios to (label) temperatures derived using the infrared surface brightness method. Results: We identified 143 flux ratios that allow us to determine the effective temperature with a precision of a few K and an accuracy better than 150 K, which is in line with the most…
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