REVIEW 2 major objections 3 minor 2 cited by
Revisiting GW150914 with a non-planar, eccentric waveform model
T0 review · 2 major / 3 minor · reviewed 2026-08-07 · deepseek-v4-flash
Pith's one-line read Reanalysis with an eccentric, precessing waveform model keeps GW150914 quasi-circular and slowly spinning.
desk verdict A competent first demonstration of PE with an eccentric+precessing IMR model; the result is the expected quasi-circular picture, but the eccentricity bound needs a systematic-error caveat and the Bayes factors are weaker than the text implies. read the letter →
The pith
A machine-rendered reading of the paper's core claim, the machinery that carries it, and where it could break.
The reading
What carries the argument
The central object is TEOBResumS-Dalí, a waveform model in the effective-one-body (EOB) framework, a resummation of post-Newtonian dynamics informed by numerical relativity that describes the full inspiral, merger, and ringdown of a binary black hole system. Non-circular orbits are handled by replacing the quasi-circular leading-order terms in the radiation reaction and waveform with exact analytical expressions valid on general orbits, and by adding the radial radiation-reaction force; precession is handled by evolving orbit-averaged post-Newtonian spin equations with the orbital frequency from the EOB dynamics, followed by a quasi-normal-mode-inspired prolongation of the Euler angles after merger. This machinery is what lets the authors generate waveforms for eccentric, precessing binaries and compare them against numerical-relativity simulations, establishing the model's faithfulness in the region of GW150914's parameters.
What would settle it
Re-run the non-circular, precessing-spin analysis on an injected GW150914-like signal with a known eccentricity of $e=0.1$ at 15 Hz; if the recovered $e$ posterior does not separate from the $e=0$ case and the Bayes factor against quasi-circular does not drop, the analysis lacks the sensitivity needed to support the $e<0.08$ bound.
Extended reading notes
Core claim
Using the effective-one-body model TEOBResumS-Dalí, the paper performs the first parameter estimation of GW150914 with a waveform family that covers eccentricity and precession simultaneously through inspiral, merger, and ringdown. Under the most general non-circular, precessing-spin hypothesis, the recovered chirp mass is $30.9^{+1.6}_{-1.6}$ solar masses, the inverse mass ratio $1/q = 0.86^{+0.13}_{-0.21}$, the effective spin $\chi_{\rm eff} = -0.03^{+0.12}_{-0.13}$, and the eccentricity at 15 Hz is $e = 0.04^{+0.06}_{-0.04}$, giving a 90% upper limit $e<0.08$. The mean anomaly and the in-plane spin parameter $\chi_p$ are not measured and span their priors. No hypothesis is strongly favored over the others, but the quasi-circular models are preferred over their eccentric counterparts by a log Bayes factor of about 1, so non-circularity is mildly disfavoured. The paper states that the data are consistent with a quasi-circular binary black hole merger with small effective spin and no strong evidence for precession.
Load-bearing premise
The reported $e<0.08$ limit assumes the model's quasi-circular waveforms are truly circular; the paper notes in its Fig. 1 caption that those waveforms carry a small residual eccentricity from the adiabatic initial conditions, and that residual is not included as a systematic error in the bound.
Editorial extensions
If this is right
- The quasi-circular interpretation of GW150914 is robust: adding eccentricity and precession to the model does not shift the recovered masses or effective spin.
- The 90% upper limit $e<0.08$ on eccentricity at 15 Hz constrains deviations from circular orbits for this event, with the mean anomaly unmeasured as expected for a circular inspiral.
- The in-plane spin parameter $\chi_p$ is unconstrained, so the data contain no evidence for spin-induced precession in GW150914.
- Quasi-circular models are preferred over eccentric ones by a log Bayes factor near 1, mild evidence against non-circularity rather than a decisive measurement.
- This is the first full parameter estimation with an inspiral-merger-ringdown model containing both eccentricity and precession, establishing a template for analyzing other events where such effects may matter.
Reading between the lines
- If the residual eccentricity noted in the paper's quasi-circular waveforms is comparable to the measured value, the $e<0.08$ bound could partly reflect a model artifact; including that residual as a systematic error could shift the limit.
- The same model could be applied to gravitational-wave events where eccentricity or precession is astrophysically expected, such as mergers from dense stellar environments; for GW150914 the null result is consistent with a field-binary formation channel, though the paper does not draw that conclusion.
- Because the Bayes factor favoring circular orbits is only about 1 in log, a more sensitive detector or a louder event would be needed to turn this mild preference into a strong statement.
- The computational cost of the full eccentric-precessing analysis (days per run) limits it to single events; surrogate models or faster sampling algorithms would be required before this approach can be applied to large catalogs.
Editorial analysis
A structured set of objections, weighed in public.
Referee Report
Summary. The paper reanalyzes GW150914 using TEOBResumS-Dali, an effective-one-body waveform model that includes both orbital eccentricity and spin precession, and performs Bayesian parameter estimation under four hypotheses: quasi-circular aligned-spin, quasi-circular precessing-spin, non-circular aligned-spin, and non-circular precessing-spin. The authors find the signal consistent with a quasi-circular, slowly spinning binary black hole merger, reporting an eccentricity upper limit e < 0.08 at 15 Hz and an effective spin chi_eff = -0.03^{+0.12}_{-0.13}. They also report model comparison log Bayes factors of order unity between the quasi-circular and non-circular scenarios.
Significance. If the central result holds, the paper provides the first full parameter estimation of GW150914 with an inspiral-merger-ringdown model containing both eccentricity and precession, and it confirms the standard quasi-circular interpretation with a dedicated model. The analysis uses public LIGO data and PSDs, a standard nested-sampling setup implemented in bilby/dynesty, and the waveform model is validated against numerical relativity, with mismatches below 10^{-3} in the GW150914-relevant region. The code is made publicly available. These are concrete strengths that make the analysis reproducible in principle. The quantitative eccentricity bound, however, is not yet fully secure because the systematic error from the model's known residual eccentricity in its quasi-circular waveforms is not assessed.
major comments (2)
- [Sec. 2, Fig. 1 caption] The caption of Fig. 1 states that the small oscillations in the EOB/NR phase difference are due to a small residual eccentricity in the EOB waveform related to the adiabatic initial conditions, but the size of this residual eccentricity is not quantified. Since the quasi-circular models fix e=0 and the reported bound e<0.08 at 15 Hz (Sec. 4, Fig. 5) is the primary evidence for quasi-circularity, the analysis should either quantify this residual (for example, by fitting the phase oscillations or by injecting NR waveforms into the pipeline) or include a systematic error on the eccentricity posterior. Without this, the bound could be partly contaminated by a template artifact rather than measuring astrophysical eccentricity.
- [Sec. 4, Table 1] The log Bayes factors between the quasi-circular and non-circular models are reported as logB_QC^NC ~ 1, i.e., odds ratios of order e, yet the text states that 'non-circularity is disfavoured' and that the data favor the quasi-circular interpretation. A Bayes factor of order e is generally considered weak or inconclusive evidence, so this wording overstates the strength of the model comparison. The conclusion of quasi-circularity should be based primarily on the eccentricity posterior (with the systematic caveat above) rather than on the Bayes factors, or the language should be softened to indicate that the data are consistent with both scenarios.
minor comments (3)
- [Sec. 4] There is a typo: 'distrubution' should be 'distribution' in the paragraph discussing Fig. 4.
- [Table 1] The eccentricity entry is written as 'e = 0.04^{+0.06}_{-0.04} at 90% credibility', which is ambiguous about whether this is a two-sided credible interval or a one-sided upper limit. The text later reports e<0.08 at 90% credibility; please clarify the notation in the table and figure.
- [Sec. 3] The description of the prior on eccentricity cites previous analyses [34,36,94] for the choice e in [0,0.4], but it would be useful to state explicitly that the prior is uniform in e, since the text says 'uniform priors on e' but does not repeat the word 'uniform' in the bullet list.
Circularity Check
No significant circularity: the eccentricity bound is a measured posterior from public LIGO data with an externally validated waveform model.
full rationale
The paper is an observational parameter-estimation study, not a derivation, so the circularity tests apply to whether the reported quantities are independent of the inputs. The central claim (e < 0.08 at 15 Hz, chi_eff consistent with zero) is obtained by sampling the model parameters against public GWOSC data and using the LVK PSD and calibration; the eccentricity is a sampled posterior parameter, not a fitted nuisance later relabeled as a prediction. The waveform model TEOBResumS-Dalì is developed in the authors' prior work, but its accuracy is benchmarked in this paper against external NR simulations (SXS:BBH:0305, SXS:BBH:1389, RIT:BBH:1632) and in Ref. [38] against 1395 SXS/RIT/CoRe/ICC simulations, with the target region stated as more than 99.9% faithful to NR. The residual eccentricity caveat in the Fig. 1 caption is a modeling systematic that could affect the interpretation of the eccentricity bound, but it is not a circular reduction: the e=0 template's small eccentricity is not the quantity being predicted, and no equation in the paper defines the reported bound in terms of that residual. The Bayes-factor comparison (logB ~ 1) is weak, but that is an evidentiary-strength issue, not circularity. No step reduces a claimed prediction to an input by construction.
Assumptions & free parameters
free parameters (1)
- Prior upper bound on initial eccentricity =
0.4
assumptions (4)
- domain assumption TEOBResumS-Dalí is sufficiently faithful to numerical relativity for parameter estimation in the GW150914 region, including when eccentricity and precession are active.
- domain assumption The detector noise is stationary and Gaussian with the publicly released PSD and calibration envelopes.
- ad hoc to paper Residual eccentricity in the model's quasi-circular waveforms is small compared with the measured eccentricity bound.
- domain assumption The chosen harmonic modes (2,1), (2,2), (3,3), (4,4) are sufficient for unbiased recovery of GW150914 parameters.
Cite this review
Pith. "Pith review of Revisiting GW150914 with a non-planar, eccentric waveform model." pith.science (2026). https://pith.science/paper/KOEADMF4
@misc{pith2026250521612,
author = {Pith},
title = {Pith review of: Revisiting GW150914 with a non-planar, eccentric waveform model},
year = {2026},
howpublished = {\url{https://pith.science/paper/KOEADMF4}},
note = {Machine review of arXiv:2505.21612}
}
abstract
The first direct detection of gravitational waves by the LIGO collaboration, GW150914, marked the start of a new exciting era in astronomy, enabling the study of the Universe through a new messenger. Since then, the field has grown rapidly, with the development of increasingly more sophisticated techniques to detect, analyze and interpret the signals. In this paper we revisit GW150914, presenting updated estimates of its source parameters using a waveform model developed within the EOB formalism, able to describe gravitational-wave emission from generic non-circular, non-planar binaries. We provide a comprehensive analysis of the signal and its properties, considering and contrasting various scenarios for the source: from the simplest, aligned-spin quasi-circular binary black hole merger, to more complex scenarios, including precession, eccentricity or both. Unsurprisingly, we find that the signal is consistent with a quasi-circular ($e < 0.08$ at $15$ Hz), slowly spinning $(\chi_{\rm eff} = -0.03^{+0.12}_{-0.13})$ binary black hole merger, a-posteriori validating a considerable body of works. This is the first analysis performed with an inspiral-merger-ringdown model containing both eccentricity and precession.
Figures
Figures from the paper (3 more)
Forward citations
Cited by 2 Pith papers
-
From the confluent Heun equation to a new factorized and resummed gravitational waveform for circularized, nonspinning, compact binaries
A new resummation absorbs all test-mass logarithms and transcendental numbers into closed-form factors, leaving rational polynomial waveform corrections up to 10PN.
-
AthenaK simulations of the binary black hole merger GW150914
A new open-source GPU code, AthenaK, reproduces the GW150914 merger: remnant mass within 0.01%, spin within 0.02%, and waveform phase within about 0.35 radians of established simulations.
Reference graph
Works this paper leans on
-
[150]
(KAGRA, LIGO Scientific, Virgo) 2016 Living Rev
Abbott B P et al. (KAGRA, LIGO Scientific, Virgo) 2016 Living Rev. Rel. 19 1 ( Preprint 1304.0670)
arXiv 2016
-
[151]
Aasi J et al. (LIGO Scientific) 2015 Class. Quant. Grav. 32 074001 (Preprint 1411.4547)
arXiv 2015
-
[152]
Acernese F et al. (VIRGO) 2015 Class. Quant. Grav. 32 024001 (Preprint 1408.3978)
arXiv 2015
-
[153]
(LIGO Scientific, Virgo) 2016 Phys
Abbott B P et al. (LIGO Scientific, Virgo) 2016 Phys. Rev. Lett. 116 061102 ( Preprint 1602.03837)
arXiv 2016
-
[154]
(LIGO Scientific, Virgo) 2016 Phys
Abbott B P et al. (LIGO Scientific, Virgo) 2016 Phys. Rev. Lett. 116 241102 ( Preprint 1602.03840)
arXiv 2016
-
[155]
(LIGO Scientific, Virgo) 2016 Phys
Abbott T D et al. (LIGO Scientific, Virgo) 2016 Phys. Rev. X 6 041014 (Preprint 1606.01210)
arXiv 2016
-
[156]
(LIGO Scientific, Virgo) 2016 Phys
Abbott B P et al. (LIGO Scientific, Virgo) 2016 Phys. Rev. Lett. 116 221101 [Erratum: Phys.Rev.Lett. 121, 129902 (2018)] ( Preprint 1602.03841)
arXiv 2018
-
[157]
(LIGO Scientific, Virgo) 2016 Astrophys
Abbott B P et al. (LIGO Scientific, Virgo) 2016 Astrophys. J. Lett. 833 L1 (Preprint 1602.03842)
arXiv 2016
Show all 149 references
-
[158]
(LIGO Scientific, Virgo) 2016 Astrophys
Abbott B P et al. (LIGO Scientific, Virgo) 2016 Astrophys. J. Lett. 818 L22 ( Preprint 1602.03846)
2016 arXiv
-
[159]
2020 Mon
Romero-Shaw I M et al. 2020 Mon. Not. Roy. Astron. Soc. 499 3295–3319 (Preprint 2006.00714)
2020 arXiv
-
[160]
Green S R and Gair J 2021 Mach. Learn. Sci. Tech. 2 03LT01 (Preprint 2008.03312)
2021 arXiv
-
[161]
Breschi M, Gamba R and Bernuzzi S 2021 Phys. Rev. D 104 042001 (Preprint 2102.00017)
2021 arXiv
-
[162]
Dax M, Green S R, Gair J, P¨ urrer M, Wildberger J, Macke J H, Buonanno A and Sch¨ olkopf B 2023 Phys. Rev. Lett. 130 171403 (Preprint 2210.05686)
2023 arXiv
-
[163]
Srinivasan R, Crisostomi M, Trotta R, Barausse E and Breschi M 2024 Phys. Rev. D 110 123007 (Preprint 2404.12294)
2024 arXiv
-
[164]
Carullo G, Del Pozzo W and Veitch J 2019 Phys. Rev. D 99 123029 [Erratum: Phys.Rev.D 100, 089903 (2019)] ( Preprint 1902.07527)
2019 arXiv
-
[165]
Carullo G, Laghi D, Veitch J and Del Pozzo W 2021 Phys. Rev. Lett. 126 161102 ( Preprint 2103.06167)
2021 arXiv
-
[166]
Cotesta R, Carullo G, Berti E and Cardoso V 2022 Phys. Rev. Lett. 129 111102 ( Preprint 2201.00822)
2022 arXiv
-
[167]
Isi M and Farr W M 2022 ( Preprint 2202.02941)
2022 arXiv
-
[168]
Correia A, Wang Y F, Westerweck J and Capano C D 2024 Phys. Rev. D 110 L041501 (Preprint 2312.14118)
2024 arXiv
-
[169]
Gennari V, Carullo G and Del Pozzo W 2024 Eur. Phys. J. C 84 233 (Preprint 2312.12515) Revisiting GW150914 with a non-planar, eccentric waveform model 19
2024 arXiv
-
[170]
Maenaut S, Carullo G, Cano P A, Liu A, Cardoso V, Hertog T and Li T G F 2024 ( Preprint 2411.17893)
2024 arXiv
-
[171]
Wang H T, Wang Z, Dong Y, Yim G and Shao L 2025 Phys. Rev. D 111 064037 ( Preprint 2411.13333)
2025 arXiv
-
[172]
Pacilio C, Bhagwat S and Cotesta R 2024 Phys. Rev. D 110 083010 (Preprint 2404.11373)
2024 arXiv
-
[173]
Carullo G, Riemenschneider G, Tsang K W, Nagar A and Del Pozzo W 2019 Class. Quant. Grav. 36 105009 (Preprint 1811.08744)
2019 arXiv
-
[174]
Isi M, Farr W M, Giesler M, Scheel M A and Teukolsky S A 2021 Phys. Rev. Lett. 127 011103 (Preprint 2012.04486)
2021 arXiv
-
[175]
Laghi D, Carullo G, Veitch J and Del Pozzo W 2021 Class. Quant. Grav. 38 095005 ( Preprint 2011.03816)
2021 arXiv
-
[176]
Carullo G, Laghi D, Johnson-McDaniel N K, Del Pozzo W, Dias O J C, Godazgar M and Santos J E 2022 Phys. Rev. D 105 062009 (Preprint 2109.13961)
2022 arXiv
-
[177]
Carullo G 2021 Phys. Rev. D 103 124043 (Preprint 2102.05939)
2021 arXiv
-
[178]
Silva H O, Ghosh A and Buonanno A 2023 Phys. Rev. D 107 044030 (Preprint 2205.05132)
2023 arXiv
- [179]
-
[180]
Riemenschneider G, Rettegno P, Breschi M, Albertini A, Gamba R, Bernuzzi S and Nagar A 2021 Phys. Rev. D 104 104045 (Preprint 2104.07533)
2021 arXiv
-
[181]
Gamba R, Ak¸ cay S, Bernuzzi S and Williams J 2022 Phys. Rev. D 106 024020 ( Preprint 2111.03675)
2022 arXiv
-
[182]
Estell´ es H, Husa S, Colleoni M, Keitel D, Mateu-Lucena M, Garc´ ıa-Quir´ os C, Ramos-Buades A and Borchers A 2022 Phys. Rev. D 105 084039 (Preprint 2012.11923)
2022 arXiv
-
[183]
Bonino A, Gamba R, Schmidt P, Nagar A, Pratten G, Breschi M, Rettegno P and Bernuzzi S 2023 Phys. Rev. D 107 064024 (Preprint 2207.10474)
2023 arXiv
-
[184]
Ramos-Buades A, Buonanno A, Estell´ es H, Khalil M, Mihaylov D P, Ossokine S, Pompili L and Shiferaw M 2023 Phys. Rev. D 108 124037 (Preprint 2303.18046)
2023 arXiv
- [185]
-
[186]
Gamba R, Chiaramello D and Neogi S 2024 Phys. Rev. D 110 024031 (Preprint 2404.15408)
2024 arXiv
-
[187]
Albanesi S, Gamba R, Bernuzzi S, Fontbut´ e J, Gonzalez A and Nagar A 2025 ( Preprint 2503.14580)
2025 arXiv
-
[188]
Schmidt P, Ohme F and Hannam M 2015 Phys. Rev. D 91 024043 (Preprint 1408.1810)
2015 arXiv
-
[189]
Thorne K S and Hartle J B 1984 Phys. Rev. D 31 1815–1837
1984
-
[190]
Apostolatos T A, Cutler C, Sussman G J and Thorne K S 1994 Phys. Rev. D 49 6274–6297
1994
-
[191]
Apostolatos T A 1996 Phys. Rev. D 54 2421–2437
1996
-
[192]
Schmidt P, Hannam M, Husa S and Ajith P 2011 Phys. Rev. D 84 024046 (Preprint 1012.2879)
2011 arXiv
-
[193]
Schmidt P, Hannam M and Husa S 2012 Phys. Rev. D 86 104063 (Preprint 1207.3088)
2012 arXiv
-
[194]
Boyle M, Owen R and Pfeiffer H P 2011 Phys. Rev. D 84 124011 (Preprint 1110.2965)
2011 arXiv
-
[195]
O’Shaughnessy R, Vaishnav B, Healy J, Meeks Z and Shoemaker D 2011 Phys. Rev. D 84 124002 (Preprint 1109.5224)
2011 arXiv
-
[196]
Buonanno A, Chen Y b and Vallisneri M 2003 Phys. Rev. D 67 104025 [Erratum: Phys.Rev.D 74, 029904 (2006)] ( Preprint gr-qc/0211087)
2006 arXiv
-
[197]
Morras G, Pratten G and Schmidt P 2025 Phys. Rev. D 111 084052 (Preprint 2502.03929)
2025 arXiv
-
[198]
Peters P C and Mathews J 1963 Phys. Rev. 131 435–439
1963
-
[199]
Arun K G, Blanchet L, Iyer B R and Qusailah M S S 2008 Phys. Rev. D 77 064034 ( Preprint 0711.0250)
2008 arXiv
-
[200]
Loutrel N and Yunes N 2017 Class. Quant. Grav. 34 044003 (Preprint 1607.05409)
2017 arXiv
-
[201]
Placidi A, Grignani G, Harmark T, Orselli M, Gliorio S and Nagar A 2023 Phys. Rev. D 108 024068 (Preprint 2305.14440)
2023 arXiv
-
[202]
Gamboa A, Khalil M and Buonanno A 2024 ( Preprint 2412.12831)
2024 arXiv
-
[203]
Albanesi S, Nagar A and Bernuzzi S 2021 Phys. Rev. D 104 024067 (Preprint 2104.10559)
2021 arXiv
-
[204]
Albanesi S, Nagar A, Bernuzzi S, Placidi A and Orselli M 2022Phys. Rev. D 105 104031 (Preprint Revisiting GW150914 with a non-planar, eccentric waveform model 20 2202.10063)
-
[205]
Faggioli G, van de Meent M, Buonanno A, Gamboa A, Khalil M and Khanna G 2025 Phys. Rev. D 111 044036 (Preprint 2405.19006)
2025 arXiv
-
[206]
Buonanno A and Damour T 1999 Phys. Rev. D 59 084006 (Preprint gr-qc/9811091)
1999 arXiv
-
[207]
Buonanno A and Damour T 2000 Phys. Rev. D 62 064015 (Preprint gr-qc/0001013)
2000 arXiv
-
[208]
Damour T, Jaranowski P and Schaefer G 2000 Phys. Rev. D 62 084011 (Preprint gr-qc/0005034)
2000 arXiv
-
[209]
Damour T 2001 Phys. Rev. D 64 124013 (Preprint gr-qc/0103018)
2001 arXiv
-
[210]
Damour T, Iyer B R and Nagar A 2009 Phys. Rev. D 79 064004 (Preprint 0811.2069)
2009 arXiv
-
[211]
Damour T, Jaranowski P and Schaefer G 2008 Phys. Rev. D 78 024009 (Preprint 0803.0915)
2008 arXiv
-
[212]
Barausse E and Buonanno A 2010 Phys. Rev. D 81 084024 (Preprint 0912.3517)
2010 arXiv
-
[213]
Damour T 2010 Phys. Rev. D 81 024017 (Preprint 0910.5533)
2010 arXiv
-
[214]
Damour T and Nagar A 2010 Phys. Rev. D 81 084016 (Preprint 0911.5041)
2010 arXiv
-
[215]
Damour T 2016 Phys. Rev. D 94 104015 (Preprint 1609.00354)
2016 arXiv
-
[216]
Vines J 2018 Class. Quant. Grav. 35 084002 (Preprint 1709.06016)
2018 arXiv
-
[217]
Damour T 2018 Phys. Rev. D 97 044038 (Preprint 1710.10599)
2018 arXiv
-
[218]
Bini D, Damour T and Geralico A 2019 Phys. Rev. Lett. 123 231104 (Preprint 1909.02375)
2019 arXiv
-
[219]
Nagar A and Rettegno P 2021 Phys. Rev. D 104 104004 (Preprint 2108.02043)
2021 arXiv
-
[220]
Damour T and Nagar A 2014 Phys. Rev. D 90 044018 (Preprint 1406.6913)
2014 arXiv
- [221]
-
[222]
Nagar A, Chiaramello D, Gamba R, Albanesi S, Bernuzzi S, Fantini V, Panzeri M and Rettegno P 2025 Phys. Rev. D 111 064050 (Preprint 2407.04762)
2025 arXiv
-
[223]
Broucke R and Cefola P 1973 Celestial Mechanics 7 388–389
1973
-
[224]
Chiaramello D and Nagar A 2020 Phys. Rev. D 101 101501 (Preprint 2001.11736)
2020 arXiv
-
[225]
Bini D and Damour T 2012 Phys. Rev. D 86 124012 (Preprint 1210.2834)
2012 arXiv
-
[226]
Akcay S, Gamba R and Bernuzzi S 2021 Phys. Rev. D 103 024014 (Preprint 2005.05338)
2021 arXiv
-
[227]
Pratten G, Husa S, Garcia-Quiros C, Colleoni M, Ramos-Buades A, Estelles H and Jaume R 2020 Phys. Rev. D 102 064001 (Preprint 2001.11412)
2020 arXiv
- [228]
-
[229]
Varma V, Field S E, Scheel M A, Blackman J, Kidder L E and Pfeiffer H P 2019 Phys. Rev. D 99 064045 (Preprint 1812.07865)
2019 arXiv
-
[230]
Campanelli M, Lousto C O, Marronetti P and Zlochower Y 2006 Phys. Rev. Lett. 96 111101 (Preprint gr-qc/0511048)
2006 arXiv
-
[231]
Nakano H, Healy J, Lousto C O and Zlochower Y 2015 Phys. Rev. D 91 104022 ( Preprint 1503.00718)
2015 arXiv
- [232]
-
[233]
Healy J and Lousto C O 2020 Phys. Rev. D 102 104018 (Preprint 2007.07910)
2020 arXiv
-
[234]
Healy J and Lousto C O 2022 Phys. Rev. D 105 124010 (Preprint 2202.00018)
2022 arXiv
-
[235]
Dietrich T, Radice D, Bernuzzi S, Zappa F, Perego A, Br¨ ugmann B, Chaurasia S V, Dudi R, Tichy W and Ujevic M 2018 Class. Quant. Grav. 35 24LT01 (Preprint 1806.01625)
2018 arXiv
- [236]
- [237]
- [238]
-
[239]
Harry I, Calder´ on Bustillo J and Nitz A 2018 Phys. Rev. D 97 023004 (Preprint 1709.09181)
2018 arXiv
- [240]
- [241]
-
[242]
Albanesi S, Rashti A, Zappa F, Gamba R, Cook W, Daszuta B, Bernuzzi S, Nagar A and Radice D 2025 Phys. Rev. D 111 024069 (Preprint 2405.20398)
2025 arXiv
-
[243]
Ramos-Buades A, Buonanno A and Gair J 2023 Phys. Rev. D 108 124063 (Preprint 2309.15528)
2023 arXiv
-
[244]
Speagle J S 2020 Monthly Notices of the Royal Astronomical Society 493 3132–3158 ISSN 1365- 2966 URL http://dx.doi.org/10.1093/mnras/staa278
2020 doi
-
[245]
(LIGO Scientific, Virgo) 2019 Phys
Abbott B P et al. (LIGO Scientific, Virgo) 2019 Phys. Rev. X 9 031040 (Preprint 1811.12907) Revisiting GW150914 with a non-planar, eccentric waveform model 21
2019 arXiv
-
[246]
(LIGO Scientific, VIRGO) 2024 Phys
Abbott R et al. (LIGO Scientific, VIRGO) 2024 Phys. Rev. D 109 022001 (Preprint 2108.01045)
2024 arXiv
-
[247]
Blanchet L and Damour T 1992 Phys. Rev. D 46 4304–4319
1992
-
[248]
Christodoulou D 1991 Phyis. Rev. Lett. 67 1486–1489
1991
-
[249]
Favata M 2010 Class. Quant. Grav. 27 084036 (Preprint 1003.3486)
2010 arXiv
-
[250]
Rossell´ o-Sastre M, Husa S and Bera S 2024 Phys. Rev. D 110 084074 (Preprint 2405.17302)
2024 arXiv
-
[251]
Albanesi S 2025 Phys. Rev. D 111 L121501 (Preprint 2411.04024)
2025 arXiv
-
[252]
Rossell´ o-Sastre M, Husa S, Bera S and Xu Y 2025 (Preprint 2506.05859)
2025
-
[253]
Rossell´ o-Sastre M and Husa S 2025 (Preprint 2506.08888)
2025
-
[254]
Mukherjee S, Datta S, Tiwari S, Phukon K S and Bose S 2022 Phys. Rev. D 106 104032 (Preprint 2202.08661)
2022 arXiv
-
[255]
Munna C, Evans C R and Forseth E 2023 Phys. Rev. D 108 044039 (Preprint 2306.12481)
2023 arXiv
-
[256]
Chiaramello D and Gamba R 2025 Phys. Rev. D 111 024024 (Preprint 2408.15322)
2025 arXiv
-
[257]
Barausse E, Cardoso V and Pani P 2015 J. Phys. Conf. Ser. 610 012044 (Preprint 1404.7140)
2015 arXiv
-
[258]
Barausse E, Cardoso V and Pani P 2014 Phys. Rev. D 89 104059 (Preprint 1404.7149)
2014 arXiv
-
[259]
Kavanagh B J, Nichols D A, Bertone G and Gaggero D 2020 Phys. Rev. D 102 083006 (Preprint 2002.12811)
2020 arXiv
-
[260]
Caneva Santoro G, Roy S, Vicente R, Haney M, Piccinni O J, Del Pozzo W and Martinez M 2024 Phys. Rev. Lett. 132 251401 (Preprint 2309.05061)
2024 arXiv
- [261]
-
[262]
Speri L, Antonelli A, Sberna L, Babak S, Barausse E, Gair J R and Katz M L 2023 Phys. Rev. X 13 021035 (Preprint 2207.10086)
2023 arXiv
-
[263]
Roy S and Vicente R 2025 Phys. Rev. D 111 084037 (Preprint 2410.16388)
2025 arXiv
-
[264]
Garg M, Sberna L, Speri L, Duque F and Gair J 2024 Mon. Not. Roy. Astron. Soc. 535 3283–3292 (Preprint 2410.02910)
2024 arXiv
-
[265]
Romero-Shaw I M, Goorachurn S, Siwek M and Moore C J 2024 Mon. Not. Roy. Astron. Soc. 534 L58–L64 (Preprint 2407.03869)
2024 arXiv
-
[266]
De Luca V, Del Grosso L, Iacovelli F, Maselli A and Berti E 2025 Phys. Rev. D 111 124046 (Preprint 2503.10746)
2025 arXiv
-
[267]
Field S E, Galley C R, Hesthaven J S, Kaye J and Tiglio M 2014 Phys. Rev. X 4 031006 (Preprint 1308.3565)
2014 arXiv
-
[268]
Blackman J, Field S E, Galley C R, Szil´ agyi B, Scheel M A, Tiglio M and Hemberger D A 2015 Phys. Rev. Lett. 115 121102 (Preprint 1502.07758)
2015 arXiv
-
[269]
Varma V, Field S E, Scheel M A, Blackman J, Gerosa D, Stein L C, Kidder L E and Pfeiffer H P 2019 Phys. Rev. Research. 1 033015 (Preprint 1905.09300)
2019 arXiv
-
[270]
Schmidt S, Breschi M, Gamba R, Pagano G, Rettegno P, Riemenschneider G, Bernuzzi S, Nagar A and Del Pozzo W 2021 Phys. Rev. D 103 043020 (Preprint 2011.01958)
2021 arXiv
-
[271]
Tissino J, Carullo G, Breschi M, Gamba R, Schmidt S and Bernuzzi S 2023 Phys. Rev. D 107 084037 (Preprint 2210.15684)
2023 arXiv
-
[272]
Islam T, Venumadhav T, Mehta A K, Anantpurkar I, Wadekar D, Roulet J, Mushkin J, Zackay B and Zaldarriaga M 2025 ( Preprint 2504.12420)
2025 arXiv
-
[273]
Barta D and Vas´ uth M 2018 Phys. Rev. D 97(12) 124011 URL https://link.aps.org/doi/ 10.1103/PhysRevD.97.124011
2018 doi
-
[274]
Islam T, Varma V, Lodman J, Field S E, Khanna G, Scheel M A, Pfeiffer H P, Gerosa D and Kidder L E 2021 Phys. Rev. D 103(6) 064022 URL https://link.aps.org/doi/10.1103/ PhysRevD.103.064022
2021
-
[275]
Yun Q, Han W B, Zhong X and Benavides-Gallego C A 2021 Phys. Rev. D 103(12) 124053 URL https://link.aps.org/doi/10.1103/PhysRevD.103.124053
2021 doi
-
[276]
org/abs/2411.14893
Shi R, Zhou Y, Zhao T, Ren Z and Cao Z 2024 Rapid eccentric spin-aligned binary black hole waveform generation based on deep learning ( Preprint 2411.14893) URL https://arxiv. org/abs/2411.14893
2024 arXiv
-
[277]
Revisiting GW150914 with a non-planar, eccentric waveform model 22 Rev
Smith R, Field S E, Blackburn K, Haster C J, P¨ urrer M, Raymond V and Schmidt P 2016 Phys. Revisiting GW150914 with a non-planar, eccentric waveform model 22 Rev. D 94 044031 (Preprint 1604.08253)
2016 arXiv
-
[278]
Qi H and Raymond V 2021 Phys. Rev. D 104 063031 (Preprint 2009.13812)
2021 arXiv
-
[279]
Gadre B, P¨ urrer M, Field S E, Ossokine S and Varma V 2024Phys. Rev. D 110 124038 (Preprint 2203.00381)
-
[280]
Damour T, Gopakumar A and Iyer B R 2004 Phys. Rev. D 70 064028 (Preprint gr-qc/0404128)
2004 arXiv
-
[281]
Cho G, Tanay S, Gopakumar A and Lee H M 2022 Phys. Rev. D 105 064010 ( Preprint 2110.09608)
2022 arXiv
-
[282]
Klein A, Boetzel Y, Gopakumar A, Jetzer P and de Vittori L 2018 Phys. Rev. D 98 104043 (Preprint 1801.08542)
2018 arXiv
-
[283]
Williams M J, Veitch J and Messenger C 2021 Phys. Rev. D 103 103006 (Preprint 2102.11056)
2021 arXiv
-
[284]
com/mnras/article-pdf/516/2/1644/45727106/stac2272.pdf) URL https://doi.org/ 10.1093/mnras/stac2272
Karamanis M, Beutler F, Peacock J A, Nabergoj D and Seljak U 2022 Monthly Notices of the Royal Astronomical Society 516 1644–1653 ISSN 0035-8711 (Preprint https://academic.oup. com/mnras/article-pdf/516/2/1644/45727106/stac2272.pdf) URL https://doi.org/ 10.1093/mnras/stac2272
2022 doi
-
[285]
Dax M, Green S R, Gair J, Macke J H, Buonanno A and Sch¨ olkopf B 2021 Phys. Rev. Lett. 127 241103 (Preprint 2106.12594)
2021 arXiv
-
[286]
Pankow C, Brady P, Ochsner E and O’Shaughnessy R 2015 Phys. Rev. D 92 023002 ( Preprint 1502.04370)
2015 arXiv
-
[287]
Lange J, O’Shaughnessy R and Rizzo M 2018 ( Preprint 1805.10457)
2018 arXiv
-
[288]
Roulet J, Olsen S, Mushkin J, Islam T, Venumadhav T, Zackay B and Zaldarriaga M 2022 Phys. Rev. D 106 123015 (Preprint 2207.03508)
2022 arXiv
-
[289]
Roulet J and Venumadhav T 2024 Annual Review of Nuclear and Particle Science 74 207– 332 ISSN 1545-4134 URL https://www.annualreviews.org/content/journals/10.1146/ annurev-nucl-121423-100725
2024
-
[290]
Kalogera V 2000 Astrophys. J. 541 319–328 (Preprint astro-ph/9911417)
2000 arXiv
- [291]
-
[292]
8 14906 (Preprint 1704.01352)
Stevenson S, Vigna-G´ omez A, Mandel I, Barrett J W, Neijssel C J, Perkins D and de Mink S E 2017 Nature Commun. 8 14906 (Preprint 1704.01352)
2017 arXiv
-
[293]
Zaldarriaga M, Kushnir D and Kollmeier J A 2018 Mon. Not. Roy. Astron. Soc. 473 4174–4178 (Preprint 1702.00885)
2018 arXiv
-
[294]
Gerosa D, Berti E, O’Shaughnessy R, Belczynski K, Kesden M, Wysocki D and Gladysz W 2018 Phys. Rev. D 98 084036 (Preprint 1808.02491)
2018 arXiv
-
[295]
Portegies Zwart S F and McMillan S L W 2002 Astrophys. J. 576 899–907 (Preprint astro-ph/ 0201055)
2002
-
[296]
Antonini F and Rasio F A 2016 Astrophys. J. 831 187 (Preprint 1606.04889)
2016 arXiv
-
[297]
Rodriguez C L, Zevin M, Amaro-Seoane P, Chatterjee S, Kremer K, Rasio F A and Ye C S 2019 Phys. Rev. D 100 043027 (Preprint 1906.10260)
2019 arXiv
-
[298]
5 749–760 (Preprint 2105.03439)
Gerosa D and Fishbach M 2021 Nature Astron. 5 749–760 (Preprint 2105.03439)
2021 arXiv
Reviewed August 7, 2026 · model on record in the stance chip above.
Discussion (0). Sign in to comment.