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Carli Mankowski

Publications and source records attributed to Carli Mankowski.

2 recordsLinked to original sources

Evaluating the Sensitivity of the Age Inferences of Red Giant Stars to Machine Learning Methodology

Stellar ages are vital for understanding the formation of our galaxy, but they are among the most challenging parameters to measure. Many authors address this by using machine learning models trained on stars of known age. Here we used data for 351,995 stars from Milky Way Mapper Data Release 19 to explore the sensitivity of the inferred ages to 1) neural network hyperparameters, 2) machine learning architecture, and 3) training set. We find that the resulting ages are generally insensitive to the neural network hyperparameters or the machine learning architecture, but are somewhat sensitive to the training set chosen. We also find that ages for the oldest, coolest, and lowest metallicity stars in the sample are most sensitive to the methodology used and the training set chosen. In general, our analysis suggests that even simple neural network models are sufficient for accurate age inference, but future work expanding the available training sets will be an important component of predicting reliable ages for the full galactic population.

astro-ph.SR

Expanding Asteroseismic Studies in Star Clusters Using NASA's TESS and ESA's Gaia Missions

Star clusters have long been central to the study of stellar evolution due to their chemically and chronologically homogeneous populations. Asteroseismology, the analysis of stellar oscillations and pulsations, provides precise information about properties such as masses, radii, and ages of stars in the field. However, these stars lack calibration to an absolute scale, and so this project seeks to utilize the data from NASA's TESS mission and ESA's Gaia mission to identify additional cluster stars suitable for asteroseismic analysis and calibration. In this work we analyze 14 stars belonging to 3 well-populated clusters, 5 additional stars that are the only detected oscillators in their respective clusters, and 3 detected oscillators of unknown cluster membership. By significantly expanding the number of clusters with measured oscillating giants, this project increases the opportunity for cross-validation between classical stellar models and asteroseismic methods, allowing for improvements in both calibration techniques and age estimations across the galaxy.

astro-ph.SR