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<<TableOfContents(3)>>
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 * [[https://gwdoc.icrr.u-tokyo.ac.jp/cgi-bin/private/DocDB/ShowDocument?docid=10338|Default KAGRA author-list 2018]]  * Default Authorlist [[https://gwdoc.icrr.u-tokyo.ac.jp/cgi-bin/private/DocDB/ShowDocument?docid=5925|2015]], [[https://gwdoc.icrr.u-tokyo.ac.jp/cgi-bin/private/DocDB/ShowDocument?docid=7170|2016]], [[https://gwdoc.icrr.u-tokyo.ac.jp/cgi-bin/private/DocDB/ShowDocument?docid=8211|2017]], [[https://gwdoc.icrr.u-tokyo.ac.jp/cgi-bin/private/DocDB/ShowDocument?docid=10338|2018]], [[https://gwdoc.icrr.u-tokyo.ac.jp/cgi-bin/private/DocDB/ShowDocument?docid=11648|2019]], [[https://gwdoc.icrr.u-tokyo.ac.jp/cgi-bin/private/DocDB/ShowDocument?docid=11650|2018+19]], [[https://gwdoc.icrr.u-tokyo.ac.jp/cgi-bin/private/DocDB/ShowDocument?docid=12842|2020]], [[https://gwdoc.icrr.u-tokyo.ac.jp/cgi-bin/private/DocDB/ShowDocument?docid=14306|2021]], [[https://gwdoc.icrr.u-tokyo.ac.jp/cgi-bin/private/DocDB/ShowDocument?docid=14859|2022]], [[https://gwdoc.icrr.u-tokyo.ac.jp/cgi-bin/private/DocDB/ShowDocument?docid=15687|2023]], [[https://gwdoc.icrr.u-tokyo.ac.jp/cgi-bin/private/DocDB/ShowDocument?docid=16504|2024]]
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 * [[KAGRA/KSC/FAQ#acknowledgment|How should we write acknowledgment?]]
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 * Overleaf manager: kagra-overleaf_at_icrr.u-tokyo.ac.jp
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== in preparation ==
For accessing overleaf, please contact to paper-writing team (PWT) leaders. If you plan to begin a new project with overleaf (online LaTeX sharing editor), contact to kagra-overleaf_at_icrr.u-tokyo.ac.jp

 * Overview of KAGRA : (4) Data transfer and management
   PWT leader: Nobuyuki Kanda [[https://www.overleaf.com/project/5d9fe889bb7b1d0001acb890|Overleaf]]

== Papers In Preparation (full-authorlist papers only) ==
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 * IOO paper in preparation
   PWT leader: Keiko Kokeyama [[https://www.overleaf.com/read/ykdbdghvdsnc|Overleaf]]

== Submitted Papers ==
 * Overview of KAGRA : (2) Noise Budget



== Papers Under Review (full-authorlist papers only) ==
 * (None under review now)

== Published Papers ==

<<Anchor(Journal)>>
=== Full Author-list Journal Papers ===

 * Decadal upgrade strategy for KAGRA toward post-O5 gravitational-wave astronomy
  * KAGRA collaboration (author-list 2024)
  * PWT: K. Komori and S. Morisaki + 10yr taskforce
  * arxiv:2508.03392 (arxiv only) [[https://arxiv.org/abs/2508.03392]]

 * Identification of Noise-Associated Glitches in KAGRA O3GK with Hierarchical Veto
  * KAGRA collaboration (author-list 2024)
  * PWT: K. Jung, K. Kwak, and Y-M. Kim
  * Prog. Theor. Exp. Phys. 8, 083F01 (2025) [[https://doi.org/10.1093/ptep/ptaf093]]
  * [[https://gwdoc.icrr.u-tokyo.ac.jp/cgi-bin/private/DocDB/ShowDocument?docid=16663|JGW-P2516663]]

 * Overview of KAGRA : (4) Data transfer and management
  * KAGRA collaboration (author-list 2018+2019)
  * PWT leader: N. Kanda
  * Prog. Theor. Exp. Phys. 10, 10A102 (2023) [[https://doi.org/10.1093/ptep/ptad112]]

 * Noise subtraction from KAGRA O3GK data using Independent Component Analysis [[https://gwdoc.icrr.u-tokyo.ac.jp/cgi-bin/private/DocDB/ShowDocument?docid=14018|JGW-P2214018]]
  * KAGRA collaboration (author-list 2020)
  * PWT leader: Jun'ya Kume
  * Class. Quantum Grav. 40 085015 (2023) [[https://iopscience.iop.org/article/10.1088/1361-6382/acc0cb]]

 * Input optics systems of the KAGRA detector during O3GK
  * KAGRA collaboration (author-list 2018+2019)
  * PWT leaders: Keiko Kokeyama and Masayuki Nakano
  * Prog. Theor. Exp. Phys. 2, 023F01 (2023) [[https://doi.org/10.1093/ptep/ptac166]]
  * [[https://gwdoc.icrr.u-tokyo.ac.jp/cgi-bin/private/DocDB/ShowDocument?docid=11954|JGW-P2011954-v6]], [[https://arxiv.org/abs/2210.05934|arxiv]], [[https://academic.oup.com/ptep/article/2023/5/059301/7175376|correction]]

 * Performance of the KAGRA detector during the first joint observation with GEO 600 (O3GK)
  * KAGRA collaboration (author-list 2019 + author-list 2020)
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  * [[https://arxiv.org/abs/2203.07011]]   * Prog. Theor. Exp. Phys., 10, 10A101 (2023) [[https://doi.org/10.1093/ptep/ptac093]]
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    * T.Ushiba, M.Nakano, T.Washimi
    * [[https://gwdoc.icrr.u-tokyo.ac.jp/cgi-bin/private/DocDB/ShowDocument?docid=13549|JGW-P2113549]]


== Accepted Papers ==

<<Anchor(Journal)>>
== Journal Papers ==
 * Application of the Hilbert-Huang transform for analyzing standing-accretion-shock-instability induced gravitational waves in a core-collapse supernova
  * M. Takeda, Y. Hiranuma, N. Kanda ,K. Kotake, T. Kuroda, R. Negishi, K. Oohara, K. Sakai, Y. Sakai, T. Sawada, H. Takahashi, S. Tsuchida, Y. Watanabe, T. Yokozawa
  * Physical Review D 104, 084063 (2021) [[https://doi.org/10.1103/PhysRevD.104.084063]]

 * Local Hurst exponent computation of data from triaxial seismometers monitoring KAGRA
  * A. Longo, S. Bianchi, W. Plastinao, K. Miyo, T. Yokozawa, T. Washimi, A. Araya
  * Pure and Applied Geophysics volume 178, pages3461–3470 (2021) [[https://doi.org/10.1007/s00024-021-02810-2]]

 * The KAGRA underground environment and lessons for the Einstein Telescope
  * F. Badaracco, C. D. Rossi, I. Fiori, J. Harms, K. Miyo, F. Paoletti, T. Tanaka, T. Washimi, T. Yokozawa
  * Phys. Rev. D 104, 042006 (2021) [[https://doi.org/10.1103/PhysRevD.104.042006]]

 * Effects of lightning strokes on underground gravitational waves observatories
  * T. Washimi, T. Yokozawa, M. Nakano, T. Tanaka, K. Kaihotsu, Y. Mori, T. Narita
  * JINST 16 P07033 (2021) https://doi.org/10.1088/1748-0221/16/07/P07033

 * Method for environmental noise estimation via injection tests for ground-based gravitational wave detectors
  * Tatsuki Washimi, Takaaki Yokozawa, Taiki Tanaka2, Yosuke Itoh, Jun'ya Kume, and Jun'ichi Yokoyama
  * Class. Quantum Grav. 38 125005 (2021); https://orcid.org/0000-0001-5792-4907

 * High performance thermal link with small spring constant for cryogenic applications
  * Tomohiro Yamada, Takayuki Tomaru, Toshikazu Suzuki, Takafumi Ushiba, Nobuhiro Kimura, Suguru Takada, Yuki Inoue, Takaaki Kajita
  * Cryogenics 116 (2021) 103280; https://www.sciencedirect.com/science/article/pii/S0011227521000382

 * Cryogenic suspension design for a kilometer-scale gravitational-wave detector
  * Takafumi Ushiba, Tomotada Akutsu, Sakae Araki, Rishabh Bajpai, Dan Chen, Kieran Craig, Yutaro Enomoto, Ayako Hagiwara, Sadakazu Haino, Yuki Inoue, Kiwamu Izumi, Nobuhiro Kimura, Rahul Kumar, Yuta Michimura, Shinji Miyoki, Iwao Murakami, Yoshikazu Namai, Masayuki Nakano, Masatake Ohashi, Koki Okutomi, Takaharu Shishido, Ayaka Shoda, Kentaro Somiya, Toshikazu Suzuki, Suguru Takada, Masahiro Takahashi, Ryutaro Takahashi, Shinichi Terashima, Takayuki Tomaru, Flavio Travasso, Ayako Ueda, Helios Vocca, Tomohiro Yamada, Kazuhiro Yamamoto, and Simon Zeidler
  *Class. Quantum Grav. 38 (2021) 085013; https://doi.org/10.1088/1361-6382/abe9f3
    * KAGRA collaboration (author-list 2020)
    * PWT : T.Ushiba, M.Nakano, T.Washimi
    * Galaxies 10(3), 63 (2022); [[https://doi.org/10.3390/galaxies10030063]]
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  * KAGRA collaboration (author-list 2019 )   * KAGRA collaboration (author-list 2019)
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  * Class. Quant. Grav. 38, 065011 (2020) [[https://iopscience.iop.org/article/10.1088/1361-6382/abd922]]
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  * Class. Quant. Grav. 38 (2020) 065011
  * https://iopscience.iop.org/article/10.1088/1361-6382/abd922
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  * KAGRA collaboration (author-list 2018 + 2019)   * KAGRA collaboration (author-list 2018+2019)
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  * Prog. Theor. Exp. Phys. (2021) Volume 2021, Issue 5, May 2021, 05A101 https://doi.org/10.1093/ptep/ptab018   * Prog. Theor. Exp. Phys. 5, 05A101 (2021) [[https://doi.org/10.1093/ptep/ptab018]]
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 * Demographic Landscape of the KAGRA collaboration
  * Keiko Kokeyama, Chunglee Kim, Joseph M. Fedrow, and Ayaka Shoda
  * AIP Conference Proceedings 2319, 150001 (2021); https://doi.org/10.1063/5.0036998
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  * KAGRA collaboration (author-list 2018 )   * KAGRA collaboration (author-list 2018)
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  * Prog. Theor. Exp. Phys. (2021) Volume 2021, Issue 5, May 2021, 05A101 https://doi.org/10.1093/ptep/ptaa125   * Prog. Theor. Exp. Phys. 5, 05A101 (2021) [[https://doi.org/10.1093/ptep/ptaa125]]
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  * KAGRA collaboration (author-list 2018 + 2019 + 3 )   * KAGRA collaboration (author-list 2018+2019; +3)
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  * Prog. Theor. Exp. Phys. (2021) Volume 2021, Issue 5, May 2021, 05A103 https://doi.org/10.1093/ptep/ptaa120
  * The arXiv [[https://arxiv.org/abs/2008.02921|https://arxiv.org/abs/2008.02921]] submission was made August 7, 2020.
  * [[https://gwdoc.icrr.u-tokyo.ac.jp/cgi-bin/private/DocDB/ShowDocument?docid=11478|JGWdoc-P2011478]]

 * Prospects for improving the sensitivity of the cryogenic gravitational wave detector KAGRA
  * Yuta Michimura, Kentaro Komori, Yutaro Enomoto, Koji Nagano, Atsushi Nishizawa, Eiichi Hirose, Matteo Leonardi, Eleonora Capocasa, Naoki Aritomi, Yuhang Zhao, Raffaele Flaminio, Takafumi Ushiba, Tomohiro Yamada, Li-Wei Wei, Hiroki Takeda, Satoshi Tanioka, Masaki Ando, Kazuhiro Yamamoto, Kazuhiro Hayama, Sadakazu Haino, Kentaro Somiya
  * [[https://doi.org/10.1103/PhysRevD.102.022008|Phys. Rev. D 102, 022008 (2020)]]
  * Prog. Theor. Exp. Phys. 5, 05A103 (2021) [[https://doi.org/10.1093/ptep/ptaa120]]
  * [[https://arxiv.org/abs/2008.02921|https://arxiv.org/abs/2008.02921]], [[https://gwdoc.icrr.u-tokyo.ac.jp/cgi-bin/private/DocDB/ShowDocument?docid=11478|JGWdoc-P2011478]]
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  * KAGRA collaboration (author-list 2015+2018)   * KAGRA collaboration (author-list 2015 + author-list 2018)
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 * [[https://iopscience.iop.org/article/10.1088/1361-6382/ab5c95|An arm length stabilization system for KAGRA and future gravitational-wave detectors]]
  * KAGRA collaboration (author-list 2018)
  * Class. Quant. Grav. 37 (2020) 035004 https://iopscience.iop.org/article/10.1088/1361-6382/ab5c95
  * [[https://arxiv.org/abs/1910.00955|arXiv:1910.00955]], [[https://gwdoc.icrr.u-tokyo.ac.jp/cgi-bin/private/DocDB/ShowDocument?docid=10539|JGW-P1910539]]

 * [[https://doi.org/10.1088/1742-6596/1342/1/012014|The status of KAGRA underground cryogenic gravitational wave telescope]]
  * KAGRA collaboration (author-list 2016)
  * Journal of Physics: Conference Series 1342, 012014 (2020)
  * [[https://arxiv.org/abs/1710.04823|arXiv:1710.04823]], [[https://gwdoc.icrr.u-tokyo.ac.jp/cgi-bin/DocDB/ShowDocument?docid=7191|JGW-P1707191]]

 * [[https://iopscience.iop.org/article/10.1088/1361-6382/ab28a9|First cryogenic test operation of underground km-scale gravitational-wave observatory KAGRA]]
  * KAGRA collaboration (author-list 2016 + author-list 2017+ additional NAOJ and KEK members)
  * Class. Quant. Grav. 36 (2019) 165008 https://iopscience.iop.org/article/10.1088/1361-6382/ab28a9
  * [[https://arxiv.org/abs/1901.03569|arXiv:1901.03569]], [[https://gwdoc.icrr.u-tokyo.ac.jp/cgi-bin/private/DocDB/ShowDocument?docid=9289|JGW-P1809289]]

 * [[https://doi.org/10.1038/s41550-018-0658-y|KAGRA: 2.5 Generation Interferometric Gravitational Wave Detector]]
  * KAGRA collaboration (author-list 2016 + author-list 2017)
  * Nature Astronomy, 3 (2019) 35–40. (article in Perspective section) https://www.nature.com/articles/s41550-018-0658-y
  * [[https://gwdoc.icrr.u-tokyo.ac.jp/cgi-bin/private/DocDB/ShowDocument?docid=9572| published copy at JGW-P1809572]]

 * [[https://iopscience.iop.org/article/10.1088/1361-6382/ab0fcb/pdf|Vibration isolation system with a compact damping system for power recycling mirrors of KAGRA]]
  * KAGRA collaboration (atuhor-list 2017)
  * Class. Quant. Grav. 36 (2019) 095015 https://iopscience.iop.org/article/10.1088/1361-6382/ab0fcb/pdf
  * [[https://gwdoc.icrr.u-tokyo.ac.jp/cgi-bin/private/DocDB/ShowDocument?docid=8526|JGW-P1808526]], [[https://arxiv.org/abs/1901.03053|arXiv:1901.03053]]

 * [[https://link.springer.com/article/10.1007%2Fs41114-018-0012-9|Prospects for observing and localizing gravitational-wave transients with Advanced LIGO, Advanced Virgo and KAGRA]]
  * KAGRA Collaboration, LIGO Scientific Collaboration, Virgo Collaboration (author-list 2015)
  * Living Reviews in Relativity 21, 3 (2018) https://link.springer.com/article/10.1007/s41114-018-0012-9
  * [[https://arxiv.org/abs/1304.0670|https://arxiv.org/abs/1304.0670]] [latest update: 27 Sep 2019 (version 9)]

 * [[https://academic.oup.com/ptep/article/2018/1/013F01/4817346|Construction of KAGRA: an underground gravitational-wave observatory]]
  * KAGRA Collaboration et al. (author-list 2016++)
  * Prog. Theor. Exp. Phys. 2018, 013F01 (2018)
    

=== Short Author-list Journal Papers (incl. on-behalf-of-KAGRA papers) ===

 * Evaluation of microseismic motion at the KAGRA site based on ocean wave data
  * S.Hoshino, Y.Fujikawa, M.Ohkawa, T.Washimi, and T.Yokozawa
  * [[https://gwdoc.icrr.u-tokyo.ac.jp/cgi-bin/private/DocDB/ShowDocument?docid=14943|JGW-P2314943]]
  * Prog. Theor. Exp. Phys. 10, 103F01 (2024) [[https://doi.org/10.1093/ptep/ptae108]]

 * Status of the underground gravitational wave detector KAGRA
  * T. Ushiba on behalf of the KAGRA collaboration
  * Proceedings of Science, 116 (2024) [[https://doi.org/10.22323/1.441.0116]]

 * Ground strains induced by the 2022 Hunga-Tonga volcanic eruption, observed by a 1500-m laser strainmeter in Kamioka, Japan
  * Akiteru Takamori, Akito Araya, Kouseki Miyo, Tatsuki Washimi, Takaaki Yokozawa, Hideaki Hayakawa and Masatake Ohashi
  * [[https://gwdoc.icrr.u-tokyo.ac.jp/cgi-bin/private/DocDB/ShowDocument?docid=14623|JGW-P2214623]]
  * Earth, Planets and Space volume 75, Article number: 98 (2023) [[https://doi.org/10.1186/s40623-023-01857-w|https://doi.org/10.1186/s40623-023-01857-w]]

 * Estimation of Newtonian noise from KAGRA cooling system
  * Rishabh Bajpai, Takayuki Tomaru, Toshikazu Suzuki, Kazuhiro Yamamoto, Takafumi Ushiba, Tohru Honda
  * Phys. Rev. D 107, 042001 (2023) [[https://link.aps.org/doi/10.1103/PhysRevD.107.042001]]

 * Vibration analysis of KAGRA cryostat at cryogenic temperature
  * Rishabh Bajpai, Takayuki Tomaru, Nobuhiro Kimura, Takafumi Ushiba, Kazuhiro Yamamoto, Toshikazu Suzuki, Tohru Honda
  * Class. Quantum Grav. 39 165004 (2022) [[https://doi.org/10.1088/1361-6382/ac7cb5]]

 * A laser interferometer accelerometer for vibration sensitive cryogenic experiments
  * Rishabh Bajpai, Takayuki Tomaru, Kazuhiro Yamamoto, Takfumi Ushiba, Nobuhiro Kimura, Toshikazu Suzuki, Tomohiro Yamada, Tohru Honda
  * Meas. Sci. Technol. 33 085902 (2022) [[https://doi.org/10.1088/1361-6501/ac6d46]]

 * Response of the underground environment of the KAGRA observatory against the air pressure disturbance from the Tonga volcano eruption on January 15th, 2022
  * Tatsuki Washimi, Takaaki Yokozawa, Akiteru Takamori, Akito Araya, Sota Hoshino, Yousuke Itoh, Yuichiro Kobayashi, Jun’ya Kume, Kouseki Miyo, Masashi Ohkawa, Shoichi Oshino, Takayuki Tomaru, Jun’ichi Yokoyama, Hirotaka Yuzurihara
  * Prog. Theor. Exp. Phys. 11, 113H02 (2022) [[https://doi.org/10.1093/ptep/ptac128]]

 * Unsupervised learning architecture for classifying the transient noise of interferometric gravitational-wave detectors
    * Yusuke Sakai, Yousuke Itoh, Piljong Jung, Keiko Kokeyama, Chihiro Kozakai, Katsuko T. Nakahira, Shoichi Oshino, Yutaka Shikano, Hirotaka Takahashi, Takashi Uchiyama, Gen Ueshima, Tatsuki Washimi, Takahiro Yamamoto, and Takaaki Yokozawa
    * Scientific Reports volume 12, Article number: 9935 (2022) ; [[https://doi.org/10.1038/s41598-022-13329-4]]

 * Application of the Hilbert-Huang transform for analyzing standing-accretion-shock-instability induced gravitational waves in a core-collapse supernova
  * M. Takeda, Y. Hiranuma, N. Kanda ,K. Kotake, T. Kuroda, R. Negishi, K. Oohara, K. Sakai, Y. Sakai, T. Sawada, H. Takahashi, S. Tsuchida, Y. Watanabe, T. Yokozawa
  * Physical Review D 104, 084063 (2021) [[https://doi.org/10.1103/PhysRevD.104.084063]]

 * Local Hurst exponent computation of data from triaxial seismometers monitoring KAGRA
  * A. Longo, S. Bianchi, W. Plastinao, K. Miyo, T. Yokozawa, T. Washimi, A. Araya
  * Pure and Applied Geophysics volume 178, pages3461–3470 (2021) [[https://doi.org/10.1007/s00024-021-02810-2]]

 * The KAGRA underground environment and lessons for the Einstein Telescope
  * F. Badaracco, C. D. Rossi, I. Fiori, J. Harms, K. Miyo, F. Paoletti, T. Tanaka, T. Washimi, T. Yokozawa
  * Phys. Rev. D 104, 042006 (2021) [[https://doi.org/10.1103/PhysRevD.104.042006]]

 * Effects of lightning strokes on underground gravitational waves observatories
  * T. Washimi, T. Yokozawa, M. Nakano, T. Tanaka, K. Kaihotsu, Y. Mori, T. Narita
  * JINST 16 P07033 (2021) https://doi.org/10.1088/1748-0221/16/07/P07033

 * Method for environmental noise estimation via injection tests for ground-based gravitational wave detectors
  * Tatsuki Washimi, Takaaki Yokozawa, Taiki Tanaka2, Yosuke Itoh, Jun'ya Kume, and Jun'ichi Yokoyama
  * Class. Quantum Grav. 38 125005 (2021); https://orcid.org/0000-0001-5792-4907

 * High performance thermal link with small spring constant for cryogenic applications
  * Tomohiro Yamada, Takayuki Tomaru, Toshikazu Suzuki, Takafumi Ushiba, Nobuhiro Kimura, Suguru Takada, Yuki Inoue, Takaaki Kajita
  * Cryogenics 116 (2021) 103280; https://www.sciencedirect.com/science/article/pii/S0011227521000382

 * Cryogenic suspension design for a kilometer-scale gravitational-wave detector
  * Takafumi Ushiba, Tomotada Akutsu, Sakae Araki, Rishabh Bajpai, Dan Chen, Kieran Craig, Yutaro Enomoto, Ayako Hagiwara, Sadakazu Haino, Yuki Inoue, Kiwamu Izumi, Nobuhiro Kimura, Rahul Kumar, Yuta Michimura, Shinji Miyoki, Iwao Murakami, Yoshikazu Namai, Masayuki Nakano, Masatake Ohashi, Koki Okutomi, Takaharu Shishido, Ayaka Shoda, Kentaro Somiya, Toshikazu Suzuki, Suguru Takada, Masahiro Takahashi, Ryutaro Takahashi, Shinichi Terashima, Takayuki Tomaru, Flavio Travasso, Ayako Ueda, Helios Vocca, Tomohiro Yamada, Kazuhiro Yamamoto, and Simon Zeidler
  *Class. Quantum Grav. 38 (2021) 085013; https://doi.org/10.1088/1361-6382/abe9f3

 * Demographic Landscape of the KAGRA collaboration
  * Keiko Kokeyama, Chunglee Kim, Joseph M. Fedrow, and Ayaka Shoda
  * AIP Conference Proceedings 2319, 150001 (2021); https://doi.org/10.1063/5.0036998

 * Prospects for improving the sensitivity of the cryogenic gravitational wave detector KAGRA
  * Yuta Michimura, Kentaro Komori, Yutaro Enomoto, Koji Nagano, Atsushi Nishizawa, Eiichi Hirose, Matteo Leonardi, Eleonora Capocasa, Naoki Aritomi, Yuhang Zhao, Raffaele Flaminio, Takafumi Ushiba, Tomohiro Yamada, Li-Wei Wei, Hiroki Takeda, Satoshi Tanioka, Masaki Ando, Kazuhiro Yamamoto, Kazuhiro Hayama, Sadakazu Haino, Kentaro Somiya
  * [[https://doi.org/10.1103/PhysRevD.102.022008|Phys. Rev. D 102, 022008 (2020)]]
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 * [[https://iopscience.iop.org/article/10.1088/1361-6382/ab5c95|An arm length stabilization system for KAGRA and future gravitational-wave detectors]]
  * KAGRA collaboration (author-list 2018)
  * Class. Quant. Grav. 37 (2020) 035004 https://iopscience.iop.org/article/10.1088/1361-6382/ab5c95
  * [[https://arxiv.org/abs/1910.00955|arXiv:1910.00955]]
  * [[https://gwdoc.icrr.u-tokyo.ac.jp/cgi-bin/private/DocDB/ShowDocument?docid=10539|JGWdoc P1910539]]

 * [[https://doi.org/10.1088/1742-6596/1342/1/012014|The status of KAGRA underground cryogenic gravitational wave telescope]]
  * KAGRA collaboration (author-list 2016)
  * Journal of Physics: Conference Series 1342, 012014 (2020)
  * [[https://arxiv.org/abs/1710.04823|arXiv:1710.04823]]
  * [[https://gwdoc.icrr.u-tokyo.ac.jp/cgi-bin/DocDB/ShowDocument?docid=7191|JGW-P1707191]]
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 * [[https://iopscience.iop.org/article/10.1088/1361-6382/ab28a9|First cryogenic test operation of underground km-scale gravitational-wave observatory KAGRA]]
  * KAGRA collaboration (author-list 2016+2017+ additional NAOJ and KEK members)
  * Class. Quant. Grav. 36 (2019) 165008 https://iopscience.iop.org/article/10.1088/1361-6382/ab28a9
  * [[https://arxiv.org/abs/1901.03569|arXiv:1901.03569]]
  * [[https://gwdoc.icrr.u-tokyo.ac.jp/cgi-bin/private/DocDB/ShowDocument?docid=9289| draft at JGW-P1809289]]


 * [[https://doi.org/10.1038/s41550-018-0658-y|KAGRA: 2.5 Generation Interferometric Gravitational Wave Detector]]
  * KAGRA collaboration (author-list 2016+2017)
  * Nature Astronomy, 3 (2019) 35–40. (article in Perspective section) https://www.nature.com/articles/s41550-018-0658-y
  * [[https://gwdoc.icrr.u-tokyo.ac.jp/cgi-bin/private/DocDB/ShowDocument?docid=9572| published copy at JGW-P1809572]]

 * [[https://iopscience.iop.org/article/10.1088/1361-6382/ab0fcb/pdf|Vibration isolation system with a compact damping system for power recycling mirrors of KAGRA]]
  * KAGRA collaboration
  * Class. Quant. Grav. 36 (2019) 095015 https://iopscience.iop.org/article/10.1088/1361-6382/ab0fcb/pdf
  * [[https://gwdoc.icrr.u-tokyo.ac.jp/cgi-bin/private/DocDB/ShowDocument?docid=8526| draft at JGW-P1808526]]
  * [[https://arxiv.org/abs/1901.03053|arXiv:1901.03053]]
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 * [[https://link.springer.com/article/10.1007%2Fs41114-018-0012-9|Prospects for observing and localizing gravitational-wave transients with Advanced LIGO, Advanced Virgo and KAGRA]]
  * KAGRA Collaboration, LIGO Scientific Collaboration, Virgo Collaboration (author-list 2015)
  * Living Reviews in Relativity 21, 3 (2018) https://link.springer.com/article/10.1007/s41114-018-0012-9
  * [[https://arxiv.org/abs/1304.0670|https://arxiv.org/abs/1304.0670]] [latest update: 27 Sep 2019 (version 9)]

 * [[https://academic.oup.com/ptep/article/2018/1/013F01/4817346|Construction of KAGRA: an underground gravitational-wave observatory]]
  * KAGRA Collaboration et al. (author-list 2016++)
  * Prog. Theor. Exp. Phys. 2018, 013F01 (2018)
    
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== PhD Thesis == === PhD Thesis ===

 * [[https://gwdoc.icrr.u-tokyo.ac.jp/cgi-bin/private/DocDB/ShowDocument?docid=15024|Optimal Alignment Sensing and Control for Interferometric Gravitational Wave Telescope with Sapphire Mirrors]]
  * Kenta Tanaka, University of Tokyo (2023, FY2023)

 * [[https://gwdoc.icrr.u-tokyo.ac.jp/cgi-bin/private/DocDB/ShowDocument?docid=14424|Vibration Noise Study of KAGRA Cryogenic System]]
  * Rishabh Bajpai, SOKENDAI (2022, FY2022)
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 * [[https://gwdoc.icrr.u-tokyo.ac.jp/cgi-bin/private/DocDB/ShowDocument?docid=13828|Optical Loss Study of Molecular Layers Using a Cryogenic Folded Cavity for Future Gravitational-wave Detectors]]
  * Satoshi Tanioka, SOKENDAI (2021, FY2020)

 *[[https://ir.soken.ac.jp/record/6319/files/A2176本文.pdf|Development of a frequency dependent squeezed vacuum source for broadband quantum noise reduction in advanced gravitational-wave detectors]]
  * Yuhang ZHAO, SOKENDAI (2020, FY2020)
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 * Control scheme for a Fabry–Pérot type interferometric space gravitational wave antenna  * [[https://granite.phys.s.u-tokyo.ac.jp/theses/nagano_d.pdf|Control scheme for a Fabry–Pérot type interferometric space gravitational wave antenna]]
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 * “????”  * [[https://gwdoc.icrr.u-tokyo.ac.jp/cgi-bin/private/DocDB/ShowDocument?docid=11137|Fast localization of coalescing binaries with gravitational wave detectors and low frequency vibration isolation for KAGRA]]
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 * [[https://gwdoc.icrr.u-tokyo.ac.jp/cgi-bin/private/DocDB/ShowDocument?docid=9347|Development of 13.5-meter-tall Vibration Isolation System for the Main Mirrors in KAGRA]]
  * Koki Okutomi, SOKENDAI (2019, FY2018)

 * Study on origins of massive black hole binaries using gravitational wave observations
  * Akinobu Miyamoto, Osaka City Unversity (2019, FY2018)
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 * 重力波検出器のための精密光計測・制御技術の研究
  * 森脇 成典, University of Tokyo (2012, FY2011)

 * Development of a high power optical cavity for optomechanical quantum nondemolition measurement" (輻射圧を利用した量子非破壊計測のための高パワー光共振器の開発)
  * 森 匠, University of Tokyo (2012, FY2011)
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== Master Thesis ==

 * Folded Pendulum加速度計を用いた大型低温重力波望遠鏡KAGRAのための能動防振システムの研究, Studies of Active Vibration Isolation System for KAGRA, Large-scale Cryogenic Gravitational wave Telescope, using Folded Pendulum Accelerometer
=== Master Thesis ===

 * [[https://gwdoc.icrr.u-tokyo.ac.jp/cgi-bin/private/DocDB/ShowDocument?docid=15583|大型低温重力波望遠鏡 KAGRA における非ガウス雑音の検出と同定]]
  * Shunsei Yamamura, University of Tokyo (2024, FY2023)

 * [[https://gwdoc.icrr.u-tokyo.ac.jp/cgi-bin/private/DocDB/ShowDocument?docid=15543|大型低温重力波望遠鏡 KAGRA における気象の影響]]
  * Shinya Miyamoto, University of Tokyo (2024, FY2023)

 * [[https://gwdoc.icrr.u-tokyo.ac.jp/cgi-bin/private/DocDB/ShowDocument?docid=15539|KAGRA におけるPhoton Calibration System の較正値の不確かさの低減]]
  * Shingo Fujii, University of Tokyo (2024, FY2023)

 * [[https://gwdoc.icrr.u-tokyo.ac.jp/cgi-bin/private/DocDB/ShowDocument?docid=15623|大型低温重力波望遠鏡 KAGRA におけるパラメトリック不安定性の評価の検証]]
  * 山本将之, 富山大学 (2024, FY2023)

 * [[https://gwdoc.icrr.u-tokyo.ac.jp/cgi-bin/private/DocDB/ShowDocument?docid=15622|KAGRA 低温懸架系制御用光てこの地面振動雑音の低減]]
  * 千葉天祐人, 富山大学 (2024, FY2023)

 * [[https://gwdoc.icrr.u-tokyo.ac.jp/cgi-bin/private/DocDB/ShowDocument?docid=15626|Applications of convolutional neural network and Hilbert-Huang transform to gravitational-wave data analysis]]
  * Seiya Sasaoka, Tokyo Institute of Technology (2024, FY2023)

 * [[https://gwdoc.icrr.u-tokyo.ac.jp/cgi-bin/private/DocDB/ShowDocument?docid=15717|波浪および地震データを用いた KAGRA の地面振動予測]]
  * 星野壮太, 新潟大学 (2024, FY2023)

 * [[https://gwdoc.icrr.u-tokyo.ac.jp/cgi-bin/private/DocDB/ShowDocument?docid=15615|補助信号を用いた重力波検出器のノイズ除去における機械学習モデルの性能比較]]
  * 高谷 匡平, 大阪公立大学 (2024, FY2023)

 * [[https://gwdoc.icrr.u-tokyo.ac.jp/cgi-bin/private/DocDB/ShowDocument?docid=14144|Folded Pendulum加速度計を用いた大型低温重力波望遠鏡KAGRAのための能動防振システムの研究, Studies of Active Vibration Isolation System for KAGRA, Large-scale Cryogenic Gravitational wave Telescope, using Folded Pendulum Accelerometer]]
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 * KAGRAのレーザー強度安定化システムの構築  * [[https://gwdoc.icrr.u-tokyo.ac.jp/cgi-bin/private/DocDB/ShowDocument?docid=14041|KAGRAのレーザー強度安定化システムの構築]]
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 * 重力波望遠鏡KAGRAにおけるシミュ レーションツールの開発
  * 小山直己, 新潟大学 (2022, FY2021)
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 * 大型重力波望遠鏡KAGRAにおけるパラメトリック不安定性の評価  * [[https://gwdoc.icrr.u-tokyo.ac.jp/cgi-bin/private/DocDB/ShowDocument?docid=12706|大型重力波望遠鏡KAGRAにおけるパラメトリック不安定性の評価]]
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 * 重力波望遠鏡KAGRAにおけるレーザー強度安定化システムの改良およびビームジッター効果の考察  * [[https://gwdoc.icrr.u-tokyo.ac.jp/cgi-bin/private/DocDB/ShowDocument?docid=12712|重力波望遠鏡KAGRAにおけるレーザー強度安定化システムの改良およびビームジッター効果の考察]]
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 * 低温重力波望遠鏡KAGRAのための鏡の反射膜の機械的散逸測定  * [[https://gwdoc.icrr.u-tokyo.ac.jp/cgi-bin/private/DocDB/ShowDocument?docid=12710|温重力波望遠鏡KAGRAのための鏡の反射膜の機械的散逸測定]]
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 * [[https://gwdoc.icrr.u-tokyo.ac.jp/cgi-bin/private/DocDB/ShowDocument?docid=12423|重力波望遠鏡KAGRAにおけるロック ロス分析およびそのシステム開発]]
  * 冨士川雄太, 新潟大学 (2021, FY2020)

 * 重力波望遠鏡 KAGRAにおける微小散乱光の計測
  * 村上泰基, 新潟大学 (2021, FY2020)
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 * 重力波望遠鏡KAGRAにおけるレーザー波長を用いた重力波信号の較正  * [[https://gwdoc.icrr.u-tokyo.ac.jp/cgi-bin/private/DocDB/ShowDocument?docid=16869|重力波望遠鏡KAGRAにおけるレーザー強度安定化システムの開発]]
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 * 偏光ビームスプリッターを用いたコヒーレント加算における相対位相制御に関する研究
  * 榊原 怜威, University of Tokyo (2020, FY2019)

 * マイケルソン干渉計を用いた散乱光測 定システムの動作点依存性
  * 菅井一生, 新潟大学 (2020, FY2019)

 * Einstein Telescope を用いた原始ブラックホール仮説に関する研究
  * 富上 由基, 大阪市立大学 (2020, FY2019)
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 * 重力波望遠鏡KAGRAにおけるレーザー強度安定化システムの構築  * [[https://gwdoc.icrr.u-tokyo.ac.jp/cgi-bin/private/DocDB/ShowDocument?docid=16870|重力波望遠鏡KAGRAにおけるレーザー強度安定化システムの構築]]
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 * 重力波望遠鏡KAGRAにおけるグリーンレーザーを用いた腕共振器長制御システムの開発  * [[https://gwdoc.icrr.u-tokyo.ac.jp/cgi-bin/private/DocDB/ShowDocument?docid=9919|重力波望遠鏡KAGRAにおけるグリーンレーザーを用いた腕共振器長制御システムの開発]]
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 * Development of an auto-alignment system by machine learning (機械学習を用いた光共振器のアライメント自動化システムの開発)
  * Hiroyuki Tahara, University of Tokyo (2019, FY2018)

 * 重力波による連星の質量パラメーター決定精度の研究
  * 佐々井 毬花, 大阪市立大学 (2019, FY2018)
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 * 重力波検出器KAGRAの時刻同期系の評価
  * 鍛治 毅, 大阪市立大学 (2018, FY2017)
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 * 重力波検出器KAGRAに用いるInput Mode CleanerのWave Front Sensing
  * 野替康汰, 新潟大学 (2018, FY2017)
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 * 重力波検出器KAGRA のための高出力レーザー光源の高度化
  * 池田 浩太, University of Tokyo (2017, FY2016)

 * Photothermal Common-path Interferometry を用いたMoth eye 構造の吸収率測定
  * 柳光 孝紀, University of Tokyo (2017, FY2016)
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 * ???  * 重力波測定のためのレーザー光強度の安定化
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 * 重力波検出器KAGRA用高出力レーザー光源の安定化システムの開発
  * 西内 良太, University of Tokyo (2016, FY2015)
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 * レーザー増幅とコヒーレント加算を用いた重力波検出器KAGRAのためのレーザー光源開発
  * 鈴木 健一郎, University of Tokyo (2015, FY2014)

 * Photo-Thermal Common-Path Interferometry による微小光学吸収測定
  * 古谷 寛之, University of Tokyo (2015, FY2014)
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 * 高反射ミラーの微小複屈折測定
  * 千葉智弘, University of Tokyo (2014, FY2013)

 * 大型低温重力波望遠鏡 KAGRA 用単結晶サファイアの不純物評価
  * 福本展大, University of Tokyo (2014, FY2013)


 * 重力波検出器の時系列信号:観測データの較正と複素周波数を用いたノイズシミュレーション
  * 山本 尚弘, 大阪市立大学 (2013, FY2012)

 * Cosmic String 起源重力波の数値評価と地上観測における検出可能性
  * 譲原 浩貴, 大阪市立大学 (2013, FY2012)

 * 重力波検出器のための高出力ファイバーアンプのコヒーレント加算
  * 及川 渓, University of Tokyo (2013, FY2012)

 * シミュレーション計算を用いた高精度ミラーの反射光損失評価
  * 平谷真也, University of Tokyo (2013, FY2012)

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 * 乙女座銀河団からの天体起源背景重力波についての数値シミュレーションによる研究 〜LCGTと第二世代重力波検出器を用いたラジオメトリフィルタ〜
  * 岡田 雄太, 大阪市立大学 (2012, FY2011)

 * マイケルソン干渉計を用いた低損失光学材料の光学吸収計測法の研究
  * 渡部恭平, University of Tokyo (2012, FY2011)

 * 干渉計型重力波検出器用高出力Nd:YAGスラブレーザーおよび、非平面リング共振器レーザーの強度安定化に関する研究
  * 小倉由生, University of Tokyo (2011, FY2010)

 * 光学薄膜の微小光散乱測定
  * 徳田祐太朗, University of Tokyo (2011, FY2010)




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== Graduation Thesis == === Graduation Thesis ===

 * [[https://gwdoc.icrr.u-tokyo.ac.jp/cgi-bin/private/DocDB/ShowDocument?docid=15641|O4a観測期間中にLIGOが報告した重力波候補イベントに対するKAGRAのアンテナパターンの評価]]
  * Ryoya Ishikawa, Aoyama Gakuin University (2024, FY2023)
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 * 重力波望遠鏡KAGRAにおける地面振動と海 洋波浪の関係
  * 星野壮太, 新潟大学 (2022, FY2021)

 * 重力波望遠鏡KAGRAにおけるビームプロファイラの開発
  * 伊藤拓也, 新潟大学 (2022, FY2021)
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 * KAGRAにおける空調由来の地場雑音調査及 びコイルを用いた検出器への影響の調査
  * 田中隆誠, 新潟大学 (2020, FY2019)

 * 重力波望遠鏡KAGRAにおける変調指数のモニターシステムに関する研究
  * 小山直己, 新潟大学 (2020, FY2019)
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 * KAGRAにおける干渉計制御用変調システ ムの雑音源に関する研究
  * 冨士川雄太, 新潟大学 (2019, FY2018)

 * 重力波検出器KAGRAのインプットモードクリーナーに関する研究
  * 藤井伸行, 新潟大学 (2019, FY2018)
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 * ガラス状炭素のレーザー加工における熱影響の評価
  * 原田直輝・山本昂平, University of Tokyo (2018, FY2017)

 * 重力波検出器KAGRAに用いるインプットモードクリーナーにおけるWave Front Sensing
  * 菅原成泰, 新潟大学 (2017, FY2016)
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 * 遺伝的アルゴリズムを用いた波面補正によるビーム品質改善法の研究
  * 岡崎 大樹・堀場 貴裕, University of Tokyo (2017, FY2016)

 * 大型低温重力波望遠鏡KAGRAにおけるイン プットモードクリーナー(IMC)の熱レンズ効果に関する研究
  * 熊谷有朱, 新潟大学 (2017, FY2016)
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 * プラズマ共鳴場の状態密度観測手法の開発
  * 金堂 晃久, University of Tokyo (2016, FY2015)

 * 重力波検出器KAGRAに向けた周波数参照共振器の性能評価
  * 塚田 怜央, University of Tokyo (2016, FY2015)

 * 大型重力波検出器KAGRAにおけるインプッ トモードクリーナー用防振システム
  * 成田貴志, 新潟大学 (2016, FY2015)
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 * [[https://www.gravity.phys.titech.ac.jp/doc/thesis/Sakihama_Thesis.pdf連星系およびブラックホールの準固有振動からの重力波の研究]]  * [[https://www.gravity.phys.titech.ac.jp/doc/thesis/Sakihama_Thesis.pdf|連星系およびブラックホールの準固有振動からの重力波の研究]]
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 * デフォーマブルミラーによる波面補正を用いたコヒーレント加算の研究
  * バータルフー ウンダルマー・柳光 孝紀, University of Tokyo (2015, FY2014)
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 * 強度変調光を用いた干渉計計測における非定常ショット雑音に関する研究
  * 高木 優・西内 良太, University of Tokyo (2014, FY2013)

 * 高出力レーザーにおける波面評価
  * 鈴木健一郎・臼田拓也, University of Tokyo (2013, FY2012)

 * 高反射ミラーの微小複屈折測定
  * 千葉智弘・古里博志, University of Tokyo (2013, FY2012)

 * 光共振器における鏡の熱変形評価法の研究
  * 磯部大樹, University of Tokyo (2011, FY2010)

 * 複数の結晶を用いた高効率シングルパス波長変換法の研究
  * 上原史也, University of Tokyo (2011, FY2010)

 * 低損失光学結晶の吸収係数測定
  * 安田真也, University of Tokyo (2011, FY2010)
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 * [[http://www.gravity.phys.titech.ac.jp/thesis.html|List of theses from Somiya Group at Titech]]  * [[http://www.gravity.phys.titech.ac.jp/thesis.html|List of theses from Somiya Group at Titech]]
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 * [[http://www.g-munu.t.u-tokyo.ac.jp/gakui-ronbun.html|List of theses from Mio Group at UTokyo]]

KAGRA Publications

List of Journal papers, PhD theses, Master theses, and Graduation theses related to KAGRA research.

Papers In Preparation (full-authorlist papers only)

  • Overview of KAGRA : (5) Data analysis methods

Papers Under Review (full-authorlist papers only)

  • (None under review now)

Published Papers

Full Author-list Journal Papers

Short Author-list Journal Papers (incl. on-behalf-of-KAGRA papers)

PhD Thesis

Master Thesis

Graduation Thesis

KAGRA/Publications (last edited 2025-09-09 16:36:19 by KentaroSomiya)