Fetching the paper…
Reading the bibliography…
As with the laser interferometer gravitational-wave observatory (LIGO), the matched filtering technique will be critical to the data analysis of gravitational wave detection by space-based detectors, including LISA, Taiji and Tianqin.
Gravitational waves from merging compact binaries: How accurately can one extract the binary’s parameters from the inspiral waveform?
Curt Cutler and Éanna E. Flanagan · 1994
Earlier work this paper cites.
Effective one-body approach to general relativistic two-body dynamics
A. Buonanno and T. Damour · 1999
Earlier work this paper cites.
Evolution of binary black-hole spacetimes
Frans Pretorius · 2005
Earlier work this paper cites.
Accurate evolutions of orbiting black-hole binaries without excision
M. Campanelli, C. O. Lousto, P. Marronetti, and Y. Zlochower · 2006
Earlier work this paper cites.
Gravitational-wave extraction from an inspiraling configuration of merging black holes
John G. Baker, Joan Centrella, Dae-Il Choi, Michael Koppitz, and James van Meter · 2006
Earlier work this paper cites.
Gravitational-Wave Data Analysis. Formalism and Sample Applications: The Gaussian Case
Piotr Jaranowski and Andrzej Królak · 2007
Earlier work this paper cites.
Approaching faithful templates for nonspinning binary black holes using the effective-one-body approach
Alessandra Buonanno, Yi Pan, John G. Baker, Joan Centrella, Bernard J. Kelly, Sean T. McWilliams, and James R. van Meter · 2007
Earlier work this paper cites.
Reinvestigation of moving punctured black holes with a new code
Zhoujian Cao, Hwei-Jang Yo, and Jui-Ping Yu · 2008
Earlier work this paper cites.
A tapering window for time-domain templates and simulated signals in the detection of gravitational waves from coalescing compact binaries
DJA McKechan, C Robinson, and Bangalore Suryanarayana Sathyaprakash · 2010
Earlier work this paper cites.
2010 advanced ligo anticipated sensitivity curves ligo document t0900288-v3
D Shoemaker (LIGO Scientific Collaboration) · 2010
Earlier work this paper cites.
The NINJA-2 project: detecting and characterizing gravitational waveforms modelled using numerical binary black hole simulations
J. Aasi et al · 2014
Earlier work this paper cites.
On the accuracy and precision of numerical waveforms: Effect of waveform extraction methodology
Tony Chu, Heather Fong, Prayush Kumar, Harald P Pfeiffer, Michael Boyle, Daniel A Hemberger, Lawrence E Kidder, Mark A Scheel, and Bela Szilagyi · 2016
Earlier work this paper cites.
Tianqin: a space-borne gravitational wave detector
Jun Luo, Li-Sheng Chen, Hui-Zong Duan, Yun-Gui Gong, Shoucun Hu, Jianghui Ji, Qi Liu, Jianwei Mei, Vadim Milyukov, Mikhail Sazhin, et al · 2016
Earlier work this paper cites.
Wavelet graphs for the direct detection of gravitational waves
Eric Chassande-Mottin, Eric Lebigot, Hugo Magaldi, Eve Chase, Archana Pai, Gayathri V, and Gabriele Vedovato · 2017
Earlier work this paper cites.
Improved effective-one-body model of spinning, nonprecessing binary black holes for the era of gravitational-wave astrophysics with advanced detectors
Alejandro Bohé, Lijing Shao, Andrea Taracchini, Alessandra Buonanno, Stanislav Babak, Ian W. Harry, Ian Hinder, Serguei Ossokine, Michael Pürrer, Vivien Raymond, Tony Chu, Heather Fong, Prayush Kumar, Harald P. Pfeiffer, Michael Boyle, Daniel A. Hemberger, Lawrence E. Kidder, Geoffrey Lovelace, Mark A. Scheel, and Béla Szilágyi · 2017
Earlier work this paper cites.
Waveform model for an eccentric binary black hole based on the effective-one-body-numerical-relativity formalism
Zhoujian Cao and Wen-Biao Han · 2017
Earlier work this paper cites.
Numerical relativity waveform surrogate model for generically precessing binary black hole mergers
Jonathan Blackman, Scott E. Field, Mark A. Scheel, Chad R. Galley, Christian D. Ott, Michael Boyle, Lawrence E. Kidder, Harald P. Pfeiffer, and Béla Szilágyi · 2017
Earlier work this paper cites.
Charge-induced force noise on free-falling test masses: Results from lisa pathfinder
M. Armano et al · 2017
Cited alongside, same era.
Galactic binary science with the new lisa design
Neil Cornish and Travis Robson · 2017
Cited alongside, same era.
Driving unmodeled gravitational-wave transient searches using astrophysical information
P. Bacon, V. Gayathri, E. Chassande-Mottin, A. Pai, F. Salemi, and G. Vedovato · 2018
Cited alongside, same era.
The new frontier of gravitational waves
M. Coleman Miller and Nicols Yunes · 2019
Cited alongside, same era.
Surrogate models for precessing binary black hole simulations with unequal masses
Vijay Varma, Scott E. Field, Mark A. Scheel, Jonathan Blackman, Davide Gerosa, Leo C. Stein, Lawrence E. Kidder, and Harald P. Pfeiffer · 2019
Cited alongside, same era.
The SXS collaboration catalog of binary black hole simulations
Michael Boyle, Daniel Hemberger, Dante A. B. Iozzo, Geoffrey Lovelace, Serguei Ossokine, Harald P. Pfeiffer, Mark A. Scheel, Leo C. Stein, Charles J. Woodford, Aaron B. Zimmerman, Nousha Afshari, Kevin Barkett, Jonathan Blackman, Katerina Chatziioannou, Tony Chu, Nicholas Demos, Nils Deppe, Scott E. Field, Nils L. Fischer, Evan Foley, Heather Fong, Alyssa Garcia, Matthew Giesler, Francois Hebert, Ian Hinder, Reza Katebi, Haroon Khan, Lawrence E. Kidder, Prayush Kumar, Kevin Kuper, Halston Lim, Maria Okounkova, Teresita Ramirez, Samuel Rodriguez, Hannes R. Rüter, Patricia Schmidt, Bela Szilagyi, Saul A. Teukolsky, Vijay Varma, and Marissa Walker · 2019
The first round result from the TianQin-1 satellite
Jun Luo, Yan-Zheng Bai, Lin Cai, Bin Cao, Wei-Ming Chen, Yu Chen, De-Cong Cheng, Yan-Wei Ding, Hui-Zong Duan, Xingyu Gou, Chao-Zheng Gu, De-Feng Gu, Zi-Qi He, Shuang Hu, Yuexin Hu, Xiang-Qing Huang, Qinghua Jiang, Yuan-Ze Jiang, Hong-Gang Li, Hong-Yin Li, Jia Li, Ming Li, Zhu Li, Zhu-Xi Li, Yu-Rong Liang, Fang-Jie Liao, Yan-Chong Liu, Li Liu, Pei-Bo Liu, Xuhui Liu, Yuan Liu, Xiong-Fei Lu, Yan Luo, Jianwei Mei, Min Ming, Shao-Bo Qu, Ding-Yin Tan, Mi Tang, Liang-Cheng Tu, Cheng-Rui Wang, Fengbin Wang, Guan-Fang Wang, Jian Wang, Lijiao Wang, Xudong Wang, Ran Wei, Shu-Chao Wu, Chun-Yu Xiao, Meng-Zhe Xie, Xiao-Shi Xu, Liang Yang, Ming-Lin Yang, Shan-Qing Yang, Hsien-Chi Yeh, Jian-Bo Yu, Lihua Zhang, Meng-Hao Zhao, and Ze-Bing Zhou · 2020
Later among the works it cites.
Parameter estimation of stellar-mass black hole binaries with lisa
Alexandre Toubiana, Sylvain Marsat, Stanislav Babak, John Baker, and Tito Dal Canton · 2020
Later among the works it cites.
Taiji program: Gravitational-wave sources
Wen-Hong Ruan, Zong-Kuan Guo, Rong-Gen Cai, and Yuan-Zhong Zhang · 2020
Later among the works it cites.
The LIGO Scientific Collaboration, the Virgo Collaboration, the KAGRA Collaboration, R. Abbott, et al · 2021
Later among the works it cites.
alphaXiv searches the wider corpus for related work and actual follow-ups.
alphaXiv is searching for related work…
Cited alongside, same era.
The construction and use of LISA sensitivity curves
Travis Robson, Neil J Cornish, and Chang Liu · 2019
Cited alongside, same era.
Enhancing Gravitational-Wave Science with Machine Learning
Elena Cuoco, Jade Powell, Marco Cavaglià, Kendall Ackley, Michal Bejger, Chayan Chatterjee, Michael Coughlin, Scott Coughlin, Paul Easter, Reed Essick, Hunter Gabbard, Timothy Gebhard, Shaon Ghosh, Leila Haegel, Alberto Iess, David Keitel, Zsuzsa Marka, Szabolcs Marka, Filip Morawski, Tri Nguyen, Rich Ormiston, Michael Puerrer, Massimiliano Razzano, Kai Staats, Gabriele Vajente, and Daniel Williams · 2020
Cited alongside, same era.
Gravitational-wave signal recognition of ligo data by deep learning
He Wang, Shichao Wu, Zhoujian Cao, Xiaolin Liu, and Jian-Yang Zhu · 2020
Cited alongside, same era.
Optically targeted search for gravitational waves emitted by core-collapse supernovae during the first and second observing runs of advanced ligo and advanced virgo
B. P. Abbott et al · 2020
Cited alongside, same era.
Numerical Relativity for Gravitational Wave Source Modelling
Tianyu Zhao, Zhoujian Cao, Chun-Yu Lin, and Hwei-Jang Yo · 2020
Cited alongside, same era.
Faithful analytical effective-one-body waveform model for spin-aligned, moderately eccentric, coalescing black hole binaries
Danilo Chiaramello and Alessandro Nagar · 2020
Cited alongside, same era.
Principles of Gravitational-Wave Data Analysis
Andrzej Królak · 2021
Later among the works it cites.
Improved deep learning techniques in gravitational-wave data analysis
Heming Xia, Lijing Shao, Junjie Zhao, and Zhoujian Cao · 2021
Later among the works it cites.
Eccentric binary black hole surrogate models for the gravitational waveform and remnant properties: Comparable mass, nonspinning case
Tousif Islam, Vijay Varma, Jackie Lodman, Scott E. Field, Gaurav Khanna, Mark A. Scheel, Harald P. Pfeiffer, Davide Gerosa, and Lawrence E. Kidder · 2021
Later among the works it cites.
A roadmap of gravitational wave data analysis
Lorenzo Speri, Nikolaos Karnesis, Arianna I. Renzini, and Jonathan R. Gair · 2022
Later among the works it cites.
Parameter estimation with gravitational waves
Nelson Christensen and Renate Meyer · 2022
Later among the works it cites.
Ensemble of deep convolutional neural networks for real-time gravitational wave signal recognition
CunLiang Ma, Wei Wang, He Wang, and Zhoujian Cao · 2022
Later among the works it cites.
A higher-multipole gravitational waveform model for an eccentric binary black holes based on the effective-one-body-numerical-relativity formalism
Xiaolin Liu, Zhoujian Cao, and Zong-Hong Zhu · 2022
Later among the works it cites.
Open data from the third observing run of LIGO, Virgo, KAGRA and GEO
The LIGO Scientific Collaboration, the Virgo Collaboration, the KAGRA Collaboration, R. Abbott, et al · 2023
Later among the works it cites.
Astrophysics with the Laser Interferometer Space Antenna
Pau Amaro-Seoane et al · 2023
Later among the works it cites.
First machine learning gravitational-wave search mock data challenge
Marlin B. Schäfer, Ondřej Zelenka, Alexander H. Nitz, He Wang, Shichao Wu, Zong-Kuan Guo, Zhoujian Cao, Zhixiang Ren, Paraskevi Nousi, Nikolaos Stergioulas, Panagiotis Iosif, Alexandra E. Koloniari, Anastasios Tefas, Nikolaos Passalis, Francesco Salemi, Gabriele Vedovato, Sergey Klimenko, Tanmaya Mishra, Bernd Brügmann, Elena Cuoco, E. A. Huerta, Chris Messenger, and Frank Ohme · 2023
Later among the works it cites.
Artificial intelligence model for gravitational wave search based on the waveform envelope
Cunliang Ma, Wei Wang, He Wang, and Zhoujian Cao · 2023
Later among the works it cites.
Upgraded waveform model of eccentric binary black hole based on effective-one-body-numerical-relativity for spin-aligned binary black holes
Xiaolin Liu, Zhoujian Cao, and Lijing Shao · 2023
Later among the works it cites.