Datasets:
license: mit
size_categories:
- 10K<n<100K
tags:
- astronomy
- multimodal
- classification
arxiv:
- arXiv:2411.08842
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path: sub50_0/train-*
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AstroM3Processed
Description
AstroM3Processed is a time-series astronomy dataset containing photometry, spectra, and metadata features for variable stars. The dataset was constructed by cross-matching publicly available astronomical datasets, primarily from the ASAS-SN (Shappee et al. 2014) variable star catalog (Jayasinghe et al. 2019) and LAMOST spectroscopic survey (Cui et al. 2012), along with data from WISE (Wright et al. 2010), GALEX (Morrissey et al. 2007), 2MASS (Skrutskie et al. 2006) and Gaia EDR3 (Gaia Collaboration et al. 2021).
The dataset includes multiple subsets (full
, sub10
, sub25
, sub50
) and supports different random seeds (42
, 66
, 0
, 12
, 123
).
Each sample consists of:
- Photometry: Light curve data of shape
(N, 9)
(time, flux, flux_error, amplitude, period, lksl_statistic, rfr_score, mad, delta_t). - Spectra: Spectra observations of shape
(3, 2575)
(wavelength, flux, flux_error). - Metadata: List of metadata values of shape
(34,)
- Label: The class name as int.
Corresponding paper and code
- Paper: AstroM3: A self-supervised multimodal model for astronomy
- Code Repository: GitHub: AstroM3
- Original Data: AstroMLCore/AstroM3Dataset
Note: The processed dataset AstroM3Processed
is created from the original dataset AstroM3Dataset
by using preprocess.py
Subsets and Seeds
AstroM3Dataset is available in different subset sizes:
full
: Entire datasetsub50
: 50% subsetsub25
: 25% subsetsub10
: 10% subset
Each subset is sampled from the respective train, validation, and test splits of the full dataset.
For reproducibility, each subset is provided with different random seeds:
42
,66
,0
,12
,123
Usage
To load the dataset using the Hugging Face datasets
library, specify the name in the format "{subset}_{seed}". For example:
from datasets import load_dataset
# Load the full dataset with seed 42
dataset = load_dataset("AstroMLCore/AstroM3Processed", name="full_42")
# Load the 25% subset sampled using seed 123
dataset = load_dataset("AstroMLCore/AstroM3Processed", name="sub25_123")
Citation
🤗 If you find this dataset usefull, please cite our paper 🤗
@article{rizhko2024astrom,
title={AstroM $\^{} 3$: A self-supervised multimodal model for astronomy},
author={Rizhko, Mariia and Bloom, Joshua S},
journal={arXiv preprint arXiv:2411.08842},
year={2024}
}
References
- Shappee, B. J., Prieto, J. L., Grupe, D., et al. 2014, ApJ, 788, 48, doi: 10.1088/0004-637X/788/1/48
- Jayasinghe, T., Stanek, K. Z., Kochanek, C. S., et al. 2019, MNRAS, 486, 1907, doi: 10.1093/mnras/stz844
- Cui, X.-Q., Zhao, Y.-H., Chu, Y.-Q., et al. 2012, Research in Astronomy and Astrophysics, 12, 1197, doi: 10.1088/1674-4527/12/9/003
- Wright, E. L., Eisenhardt, P. R. M., Mainzer, A. K., et al. 2010, AJ, 140, 1868, doi: 10.1088/0004-6256/140/6/1868
- Morrissey, P., Conrow, T., Barlow, T. A., et al. 2007, ApJS, 173, 682, doi: 10.1086/520512
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