Infrared bubble recognition in the Milky Way and beyond using deep learning

Fuente: arXiv
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Auteurs principaux: Nishimoto, Shimpei, Onishi, Toshikazu, Nishimura, Atsushi, Fujita, Shinji, Kawanishi, Yasutomo, Nakatani, Shuyo, Tokuda, Kazuki, Shimajiri, Yoshito, Kaneko, Hiroyuki, Miyamoto, Yusuke, Inoue, Tsuyoshi, Ito, Atsushi M
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Publié: 2025
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author Nishimoto, Shimpei
Onishi, Toshikazu
Nishimura, Atsushi
Fujita, Shinji
Kawanishi, Yasutomo
Nakatani, Shuyo
Tokuda, Kazuki
Shimajiri, Yoshito
Kaneko, Hiroyuki
Miyamoto, Yusuke
Inoue, Tsuyoshi
Ito, Atsushi M
author_facet Nishimoto, Shimpei
Onishi, Toshikazu
Nishimura, Atsushi
Fujita, Shinji
Kawanishi, Yasutomo
Nakatani, Shuyo
Tokuda, Kazuki
Shimajiri, Yoshito
Kaneko, Hiroyuki
Miyamoto, Yusuke
Inoue, Tsuyoshi
Ito, Atsushi M
contents We propose a deep learning model that can detect Spitzer bubbles accurately using two-wavelength near-infrared data acquired by the Spitzer Space Telescope and JWST. The model is based on the Single Shot MultiBox Detector as an object detection model, trained and validated using Spitzer bubbles identified by the Milky Way Project (MWP-Bubble). We found that using only MWP-Bubbles with clear structures, along with normalization and data augmentation, significantly improved performance. To reduce the dataset bias, we also use the data without bubbles in the dataset selected by combining two techniques: negative sampling and clustering. The model was optimized by hyperparameter tuning using Bayesian optimization. Applying this model to a test region of the Galactic plane resulted in a 98 $\%$ detection rate for MWP-Bubbles with 8 $μ$ m emission clearly encompassing 24 $μ$ m emission. Additionally, we applied the model to a broader area of $1^\circ \leq |l| \leq 65^\circ$, $|b| \leq 1^\circ$, including both training and validation regions, and the model detected 3,006 bubbles, of which 1,413 were newly detected. We also attempted to detect bubbles in the high-mass star-forming region Cygnus $X$, as well as in the external galaxies Large Magellanic Cloud (LMC) and NGC 628. The model successfully detected Spitzer bubbles in these external galaxies, though it also detected Mira-type variable stars and other compact sources that can be difficult to distinguish from Spitzer bubbles. The detection process takes only a few hours, demonstrating the efficiency in detecting bubble structures. Furthermore, the method used for detecting Spitzer bubbles was applied to detect shell-like structures observable only in the 8 $μ$ m emission band, leading to the detection of 469 shell-like structures in the LMC and 143 in NGC 628.
format Preprint
id arxiv_https___arxiv_org_abs_2504_03367
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Infrared bubble recognition in the Milky Way and beyond using deep learning
Nishimoto, Shimpei
Onishi, Toshikazu
Nishimura, Atsushi
Fujita, Shinji
Kawanishi, Yasutomo
Nakatani, Shuyo
Tokuda, Kazuki
Shimajiri, Yoshito
Kaneko, Hiroyuki
Miyamoto, Yusuke
Inoue, Tsuyoshi
Ito, Atsushi M
Astrophysics of Galaxies
We propose a deep learning model that can detect Spitzer bubbles accurately using two-wavelength near-infrared data acquired by the Spitzer Space Telescope and JWST. The model is based on the Single Shot MultiBox Detector as an object detection model, trained and validated using Spitzer bubbles identified by the Milky Way Project (MWP-Bubble). We found that using only MWP-Bubbles with clear structures, along with normalization and data augmentation, significantly improved performance. To reduce the dataset bias, we also use the data without bubbles in the dataset selected by combining two techniques: negative sampling and clustering. The model was optimized by hyperparameter tuning using Bayesian optimization. Applying this model to a test region of the Galactic plane resulted in a 98 $\%$ detection rate for MWP-Bubbles with 8 $μ$ m emission clearly encompassing 24 $μ$ m emission. Additionally, we applied the model to a broader area of $1^\circ \leq |l| \leq 65^\circ$, $|b| \leq 1^\circ$, including both training and validation regions, and the model detected 3,006 bubbles, of which 1,413 were newly detected. We also attempted to detect bubbles in the high-mass star-forming region Cygnus $X$, as well as in the external galaxies Large Magellanic Cloud (LMC) and NGC 628. The model successfully detected Spitzer bubbles in these external galaxies, though it also detected Mira-type variable stars and other compact sources that can be difficult to distinguish from Spitzer bubbles. The detection process takes only a few hours, demonstrating the efficiency in detecting bubble structures. Furthermore, the method used for detecting Spitzer bubbles was applied to detect shell-like structures observable only in the 8 $μ$ m emission band, leading to the detection of 469 shell-like structures in the LMC and 143 in NGC 628.
title Infrared bubble recognition in the Milky Way and beyond using deep learning
topic Astrophysics of Galaxies
url https://arxiv.org/abs/2504.03367