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ler is a Python package for simulating compact-binary gravitational-wave populations and estimating detectable event rates for current and future LIGO-Virgo-KAGRA detector networks.
Acernese, F., Agathos, M., Agatsuma, K., Aisa, D., Allemandou, N., Allocca, A., Amarni, J., Astone, P., Balestri, G., Ballardin, G., Barone, F., Baronick, J.-P., Barsuglia, M., Basti, A., Basti, F., Bauer, T. S., Bavigadda, V., Bejger, M., Beker, M. G., … Zendri, J.-P. (2014). Advanced virgo: A second-generation interferometric gravitational wave detector. Classical and Quantum Gravity , 32 (2), 024001. https://doi.org/10.1088/0264-9381/32/2/024001
2014
Earlier work this paper cites.
Lam, S. K., Pitrou, A., & Seibert, S. (2015). Numba: A LLVM-based Python JIT compiler. Proceedings of the Second Workshop on the LLVM Compiler Infrastructure in HPC , 1–6. https://doi.org/10.1145/2833157.2833162
2015
Earlier work this paper cites.
Tessore, N., & Benton Metcalf, R. (2015). The elliptical power law profile lens. Astronomy and Astrophysics , 580 , A79. https://doi.org/10.1051/0004-6361/201526773
2015
Earlier work this paper cites.
The LIGO Scientific Collaboration, Aasi, J., Abbott, B. P., Abbott, R., Abbott, T., Abernathy, M. R., Ackley, K., Adams, C., Adams, T., Addesso, P., Adhikari, R. X., Adya, V., Affeldt, C., Aggarwal, N., Aguiar, O. D., Ain, A., Ajith, P., Alemic, A., Allen, B., … Zweizig, J. (2015). Advanced LIGO. Classical and Quantum Gravity , 32 (7), 074001. https://doi.org/10.1088/0264-9381/32/7/074001
2015
Earlier work this paper cites.
Haris, K., Mehta, A. K., Kumar, S., Venumadhav, T., & Ajith, P. (2018). Identifying strongly lensed gravitational wave signals from binary black hole mergers . https://doi.org/10.48550/arXiv.1807.07062
2018
Earlier work this paper cites.
Abbott, B. P., Abbott, R., Abbott, T. D., Abraham, S., Acernese, F., Ackley, K., Adams, C., Adhikari, R. X., Adya, V. B., Affeldt, C., Agathos, M., Agatsuma, K., Aggarwal, N., Aguiar, O. D., Aiello, L., Ain, A., Ajith, P., Allen, G., Allocca, A., … Zweizig, J. (2019). GWTC-1: A gravitational-wave transient catalog of compact binary mergers observed by LIGO and Virgo during the first and second observing runs. Physical Review X , 9 (3). https://doi.org/10.1103/physrevx.9.031040
2019
Earlier work this paper cites.
Ashton, G., Hübner, M., Lasky, P. D., Talbot, C., Ackley, K., Biscoveanu, S., Chu, Q., Divakarla, A., Easter, P. J., Goncharov, B., Vivanco, F. H., Harms, J., Lower, M. E., Meadors, G. D., Melchor, D., Payne, E., Pitkin, M. D., Powell, J., Sarin, N., … Thrane, E. (2019). Bilby: A user-friendly Bayesian inference library for gravitational-wave astronomy. The Astrophysical Journal Supplement Series , 241 (2), 27. https://doi.org/10.3847/1538-4365/ab06fc
2019
Earlier work this paper cites.
Thrane, E., & Talbot, C. (2019). An introduction to Bayesian inference in gravitational-wave astronomy: Parameter estimation, model selection, and hierarchical models. Publications of the Astronomical Society of Australia , 36 . https://doi.org/10.1017/pasa.2019.2
2019
Earlier work this paper cites.
Gray, R., Magaña Hernandez, I., Qi, H., Sur, A., Brady, P. R., Chen, H.-Y., Farr, W. M., Fishbach, M., Gair, J. R., Ghosh, A., Holz, D. E., Mastrogiovanni, S., Messenger, C., Steer, D. A., & Veitch, J. (2020). Cosmological inference using gravitational wave standard sirens: A mock data analysis. Physical Review D , 101 (12), 122001. https://doi.org/10.1103/PhysRevD.101.122001
2020
Earlier work this paper cites.
Harris, C. R., Millman, K. J., van der Walt, S. J., Gommers, R., Virtanen, P., Cournapeau, D., Wieser, E., Taylor, J., Berg, S., Smith, N. J., Kern, R., Picus, M., Hoyer, S., van Kerkwijk, M. H., Brett, M., Haldane, A., Fernández del Río, J., Wiebe, M., Peterson, P., … Oliphant, T. E. (2020). Array programming with NumPy. Nature , 585 (7825), 357–362. https://doi.org/10.1038/s41586-020-2649-2
2020
Cited alongside, same era.
Virtanen, P., Gommers, R., Oliphant, T. E., Haberland, M., Reddy, T., Cournapeau, D., Burovski, E., Peterson, P., Weckesser, W., Bright, J., van der Walt, S. J., Brett, M., Wilson, J., Millman, K. J., Mayorov, N., Nelson, A. R. J., Jones, E., Kern, R., Larson, E., … SciPy 1.0 Contributors. (2020). SciPy 1.0: Fundamental algorithms for scientific computing in Python. Nature Methods , 17 (3), 261–272. https://doi.org/10.1038/s41592-019-0686-2
2020
Cited alongside, same era.
Abbott, R., Abbott, T. D., Abraham, S., Acernese, F., Ackley, K., Adams, A., Adams, C., Adhikari, R. X., Adya, V. B., Affeldt, C., Agarwal, D., Agathos, M., Agatsuma, K., Aggarwal, N., Aguiar, O. D., Aiello, L., Ain, A., Ajith, P., Aleman, K. M., … Zweizig, J. (2021). Search for lensing signatures in the gravitational-wave observations from the first half of LIGO–Virgo’s third observing run. The Astrophysical Journal , 923 (1), 14. https://doi.org/10.3847/1538-4357/ac23db
Gray, R., Beirnaert, F., Karathanasis, C., Revenu, B., Turski, C., Chen, A., Baker, T., Vallejo, S., Enea Romano, A., Ghosh, T., Ghosh, A., Leyde, K., Mastrogiovanni, S., & More, S. (2023). Joint cosmological and gravitational-wave population inference using dark sirens and galaxy catalogues. Journal of Cosmology and Astroparticle Physics , 2023 (12), 023. https://doi.org/10.1088/1475-7516/2023/12/023
2023
Later among the works it cites.
Janquart, J., Wright, M., Goyal, S., Chan, J. C. L., Ganguly, A., Garrón, Á., Keitel, D., Li, A. K. Y., Liu, A., Lo, R. K. L., Mishra, A., More, A., Phurailatpam, H., Prasia, P., Ajith, P., Biscoveanu, S., Cremonese, P., Cudell, J. R., Ezquiaga, J. M., … Veitch, J. (2023). Follow-up analyses to the O3 LIGO–Virgo–KAGRA lensing searches. Monthly Notices of the Royal Astronomical Society , 526 (3), 3832–3860. https://doi.org/10.1093/mnras/stad2909
2023
Later among the works it cites.
More, A., & Phurailatpam, H. (2025). Gravitational lensing: Towards combining the multi-messengers. Philosophical Transactions of the Royal Society A: Mathematical, Physical and Engineering Sciences , 383 (2295), 20240127. https://doi.org/10.1098/rsta.2024.0127
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2021
Cited alongside, same era.
Abbott, R., Abbott, T. D., Abraham, S., Acernese, F., Ackley, K., Adams, A., Adams, C., Adhikari, R. X., Adya, V. B., Affeldt, C., Agathos, M., Agatsuma, K., Aggarwal, N., Aguiar, O. D., Aiello, L., Ain, A., Ajith, P., Akcay, S., Allen, G., … Zweizig, J. (2021). GWTC-2: Compact binary coalescences observed by LIGO and Virgo during the first half of the third observing run. Physical Review X , 11 (2), 021053. https://doi.org/10.1103/PhysRevX.11.021053
2021
Cited alongside, same era.
Akutsu, T., Ando, M., Arai, K., Arai, Y., Araki, S., Araya, A., Aritomi, N., Aso, Y., Bae, S., Bae, Y., Baiotti, L., Bajpai, R., Barton, M. A., Cannon, K., Capocasa, E., Chan, M., Chen, C., Chen, K., Chen, Y., … Zhu, Z.-H. (2020). Overview of KAGRA: Detector design and construction history. Progress of Theoretical and Experimental Physics , 2021 (5), 05A101. https://doi.org/10.1093/ptep/ptaa125
2021
Cited alongside, same era.
Birrer, S., Shajib, A. J., Gilman, D., Galan, A., Aalbers, J., Millon, M., Morgan, R., Pagano, G., Park, J. W., Teodori, L., Tessore, N., Ueland, M., Vyvere, L. V. de, Wagner-Carena, S., Wempe, E., Yang, L., Ding, X., Schmidt, T., Sluse, D., … Amara, A. (2021). lenstronomy II: A gravitational lensing software ecosystem. Journal of Open Source Software , 6 (62), 3283. https://doi.org/10.21105/joss.03283
2021
Cited alongside, same era.
Wierda, A. R. A. C., Wempe, E., Hannuksela, O. A., Koopmans, L. V. E., Agnello, A., Bonvin, C., Bucciarelli, B., Camera, C., Czoske, O., Finke, C., et al. (2021). Beyond the detector horizon: Forecasting gravitational-wave strong lensing. The Astrophysical Journal , 921 (1), 154. https://doi.org/10.3847/1538-4357/ac1bb4
2021
Cited alongside, same era.
Gray, R., Messenger, C., & Veitch, J. (2022). A pixelated approach to galaxy catalogue incompleteness: Improving the dark siren measurement of the hubble constant. Monthly Notices of the Royal Astronomical Society , 512 (1), 1127–1140. https://doi.org/10.1093/mnras/stac366
2022
Cited alongside, same era.
Abbott, R., Abbott, T. D., Acernese, F., Ackley, K., Adams, C., Adhikari, N., Adhikari, R. X., Adya, V. B., Affeldt, C., Agarwal, D., Agathos, M., Agatsuma, K., Aggarwal, N., Aguiar, O. D., Aiello, L., Ain, A., Ajith, P., Akcay, S., Akutsu, T., … Zweizig, J. (2023). GWTC-3: Compact binary coalescences observed by LIGO and Virgo during the second part of the third observing run. Physical Review X , 13 (4), 041039. https://doi.org/10.1103/PhysRevX.13.041039
2023
Cited alongside, same era.
2024
Closest in time.
The LIGO Scientific Collaboration, the Virgo Collaboration, and the KAGRA Collaboration. (2024). Search for gravitational-lensing signatures in the full third observing run of the LIGO–Virgo network. The Astrophysical Journal , 970 (2), 191. https://doi.org/10.3847/1538-4357/ad3e83
2024
Closest in time.
Ng, L. C. Y., Janquart, J., Phurailatpam, H., Narola, H., Poon, J. S. C., Van Den Broeck, C., & Hannuksela, O. A. (2025). Uncovering faint lensed gravitational-wave signals and reprioritizing their follow-up analysis using galaxy lensing forecasts with detected counterparts. Monthly Notices of the Royal Astronomical Society , 540 (4), 2937–2951. https://doi.org/10.1093/mnras/staf874
2025
Closest in time.
Phurailatpam, H., & Hannuksela, O. A. (2025). gwsnr: A Python package for efficient signal-to-noise calculation of gravitational-waves . https://doi.org/10.48550/arXiv.2412.09888
2025
Closest in time.
Hannuksela, O. A., Haris, K., Janquart, J., Narola, H., Phurailatpam, H., Creighton, J. D. E., & Van Den Broeck, C. (2026). Strong gravitational-wave lensing posterior odds. The Astrophysical Journal , 1002 (1), 42. https://doi.org/10.3847/1538-4357/ae5816
2026
Closest in time.
The LIGO Scientific Collaboration, the Virgo Collaboration, and the KAGRA Collaboration. (2026). GWTC-4.0: Updating the gravitational-wave transient catalog with observations from the first part of the fourth LIGO–Virgo–KAGRA observing run. The Astrophysical Journal Letters , 1004 (2), L22. https://doi.org/10.3847/2041-8213/ae2c74
2041
Closest in time.