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_citations.md

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## Citation Summary
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- **Total ADS citations**: 9879
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- **Total INSPIRE citations**: 10822
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- **Total MAX citations**: 10900
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- **Total ADS citations**: 9894
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- **Total INSPIRE citations**: 10832
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- **Total MAX citations**: 10914
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- **h-index**: 48
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## Paper list sorted by citation count
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| # | Author | Year | Title | ADS | INSPIRE | MAX |
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|---|--------|------|-------|-----|---------|-----|
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| **1** | Berti | 2015 | Testing general relativity with present and future astrophysical observations | 1419 | 1610 | 1610 |
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| **1** | Berti | 2015 | Testing general relativity with present and future astrophysical observations | 1420 | 1610 | 1610 |
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| **2** | Barack | 2019 | Black holes, gravitational waves and fundamental physics: a roadmap | 850 | 942 | 942 |
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| **3** | Amaro-Seoane | 2022 | Astrophysics with the Laser Interferometer Space Antenna | 760 | 709 | 760 |
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| **4** | Belczynski | 2020 | Evolutionary roads leading to low effective spins, high black hole masses, and O1/O2 rates for LIGO/Virgo binary black holes | 458 | 479 | 479 |
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| **5** | Varma | 2019 | Surrogate models for precessing binary black hole simulations with unequal masses | 437 | 458 | 458 |
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| **6** | Barausse | 2020 | Prospects for fundamental physics with LISA | 398 | 452 | 452 |
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| **7** | Gerosa | 2017 | Are merging black holes born from stellar collapse or previous mergers? | 336 | 364 | 364 |
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| **8** | Arun | 2022 | New horizons for fundamental physics with LISA | 311 | 363 | 363 |
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| **9** | Gerosa | 2021 | Hierarchical mergers of stellar-mass black holes and their gravitational-wave signatures | 272 | 294 | 294 |
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| **3** | Amaro-Seoane | 2022 | Astrophysics with the Laser Interferometer Space Antenna | 761 | 709 | 761 |
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| **4** | Belczynski | 2020 | Evolutionary roads leading to low effective spins, high black hole masses, and O1/O2 rates for LIGO/Virgo binary black holes | 459 | 479 | 479 |
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| **5** | Varma | 2019 | Surrogate models for precessing binary black hole simulations with unequal masses | 439 | 458 | 458 |
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| **6** | Barausse | 2020 | Prospects for fundamental physics with LISA | 398 | 454 | 454 |
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| **7** | Arun | 2022 | New horizons for fundamental physics with LISA | 311 | 365 | 365 |
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| **8** | Gerosa | 2017 | Are merging black holes born from stellar collapse or previous mergers? | 336 | 364 | 364 |
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| **9** | Gerosa | 2021 | Hierarchical mergers of stellar-mass black holes and their gravitational-wave signatures | 274 | 295 | 295 |
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| **10** | Gerosa | 2018 | Spin orientations of merging black holes formed from the evolution of stellar binaries | 221 | 244 | 244 |
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| **11** | Afshordi | 2025 | Waveform modelling for the Laser Interferometer Space Antenna | 148 | 179 | 179 |
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| **11** | Afshordi | 2025 | Waveform modelling for the Laser Interferometer Space Antenna | 148 | 180 | 180 |
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| **12** | Varma | 2019 | High-accuracy mass, spin, and recoil predictions of generic black-hole merger remnants | 144 | 164 | 164 |
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| **13** | Gerosa | 2015 | Multi-timescale analysis of phase transitions in precessing black-hole binaries | 138 | 163 | 163 |
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| **14** | Gerosa | 2013 | Resonant-plane locking and spin alignment in stellar-mass black-hole binaries: a diagnostic of compact-binary formation | 145 | 161 | 161 |
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| **19** | Baibhav | 2019 | Gravitational-wave detection rates for compact binaries formed in isolation: LIGO/Virgo O3 and beyond | 109 | 128 | 128 |
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| **20** | Gerosa | 2019 | Escape speed of stellar clusters from multiple-generation black-hole mergers in the upper mass gap | 112 | 121 | 121 |
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| **21** | Gerosa | 2019 | Multiband gravitational-wave event rates and stellar physics | 111 | 121 | 121 |
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| **22** | Wysocki | 2018 | Explaining LIGO's observations via isolated binary evolution with natal kicks | 98 | 104 | 104 |
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| **22** | Wysocki | 2018 | Explaining LIGO's observations via isolated binary evolution with natal kicks | 99 | 105 | 105 |
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| **23** | Gerosa | 2016 | PRECESSION: Dynamics of spinning black-hole binaries with python | 93 | 104 | 104 |
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| **24** | Vitale | 2017 | Impact of Bayesian priors on the characterization of binary black hole coalescences | 88 | 102 | 102 |
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| **25** | Romero-Shaw | 2023 | Eccentricity or spin precession? Distinguishing subdominant effects in gravitational-wave data | 85 | 100 | 100 |
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| **25** | Romero-Shaw | 2023 | Eccentricity or spin precession? Distinguishing subdominant effects in gravitational-wave data | 86 | 101 | 101 |
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| **26** | Moore | 2019 | Are stellar-mass black-hole binaries too quiet for LISA? | 88 | 100 | 100 |
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| **27** | Taylor | 2018 | Mining gravitational-wave catalogs to understand binary stellar evolution: a new hierarchical bayesian framework | 93 | 98 | 98 |
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| **28** | Baibhav | 2020 | The mass gap, the spin gap, and the origin of merging binary black holes | 83 | 95 | 95 |
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| **29** | O'Shaughnessy | 2017 | Inferences about supernova physics from gravitational-wave measurements: GW151226 spin misalignment as an indicator of strong black-hole natal kicks | 79 | 88 | 88 |
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| **30** | Gerosa | 2021 | A generalized precession parameter $$\chi_\mathrm{p}$$ to interpret gravitational-wave data | 68 | 81 | 81 |
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| **31** | Bouffanais | 2019 | Constraining the fraction of binary black holes formed in isolation and young star clusters with gravitational-wave data | 77 | 79 | 79 |
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| **32** | Korol | 2020 | Populations of double white dwarfs in Milky Way satellites and their detectability with LISA | 77 | 77 | 77 |
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| **32** | Korol | 2020 | Populations of double white dwarfs in Milky Way satellites and their detectability with LISA | 78 | 77 | 78 |
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| **33** | Horbatsch | 2015 | Tensor-multi-scalar theories: relativistic stars and 3+1 decomposition | 70 | 76 | 76 |
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| **34** | Gerosa | 2016 | Black-hole kicks as new gravitational-wave observables | 63 | 68 | 68 |
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| **35** | Klein | 2022 | The last three years: multiband gravitational-wave observations of stellar-mass binary black holes | 62 | 67 | 67 |
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| **34** | Klein | 2022 | The last three years: multiband gravitational-wave observations of stellar-mass binary black holes | 63 | 69 | 69 |
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| **35** | Gerosa | 2016 | Black-hole kicks as new gravitational-wave observables | 63 | 68 | 68 |
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| **36** | Gupta | 2020 | Black holes in the low mass gap: Implications for gravitational wave observations | 58 | 64 | 64 |
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| **37** | Buscicchio | 2021 | Bayesian parameter estimation of stellar-mass black-hole binaries with LISA | 55 | 63 | 63 |
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| **38** | Gerosa | 2018 | Black-hole kicks from numerical-relativity surrogate models | 56 | 63 | 63 |
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| **41** | Mould | 2022 | Deep learning and Bayesian inference of gravitational-wave populations: hierarchical black-hole mergers | 55 | 59 | 59 |
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| **42** | Gerosa | 2020 | Astrophysical implications of GW190412 as a remnant of a previous black-hole merger | 54 | 59 | 59 |
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| **43** | Gerosa | 2014 | Distinguishing black-hole spin-orbit resonances by their gravitational-wave signatures | 46 | 57 | 57 |
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| **44** | Mould | 2022 | Which black hole formed first? Mass-ratio reversal in massive binary stars from gravitational-wave data | 47 | 55 | 55 |
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| **44** | Mould | 2022 | Which black hole formed first? Mass-ratio reversal in massive binary stars from gravitational-wave data | 48 | 55 | 55 |
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| **45** | Gerosa | 2015 | Spin alignment and differential accretion in merging black hole binaries | 55 | 50 | 55 |
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| **46** | Roebber | 2020 | Milky Way satellites shining bright in gravitational waves | 46 | 52 | 52 |
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| **47** | Sperhake | 2017 | Long-lived inverse chirp signals from core collapse in massive scalar-tensor gravity | 43 | 50 | 50 |
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| **63** | Baibhav | 2021 | Looking for the parents of LIGO's black holes | 28 | 29 | 29 |
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| **64** | Chamberlain | 2019 | Frequency-domain waveform approximants capturing Doppler shifts | 27 | 29 | 29 |
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| **65** | Fumagalli | 2024 | Residual eccentricity as a systematic uncertainty on the formation channels of binary black holes | 28 | 27 | 28 |
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| **66** | Moore | 2021 | Population-informed priors in gravitational-wave astronomy | 26 | 26 | 26 |
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| **67** | Rosca-Mead | 2020 | Structure of neutron stars in massive scalar-tensor gravity | 23 | 26 | 26 |
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| **68** | Croon | 2026 | Can GW231123 have a stellar origin? | 25 | 24 | 25 |
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| **69** | Romero-Shaw | 2025 | GW200208_222617 as an eccentric black-hole binary merger: properties and astrophysical implications | 25 | 24 | 25 |
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| **70** | Pacilio | 2024 | Flexible mapping of ringdown amplitudes for nonprecessing binary black holes | 22 | 25 | 25 |
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| **71** | Fumagalli | 2023 | Spin-eccentricity interplay in merging binary black holes | 23 | 25 | 25 |
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| **66** | Croon | 2026 | Can GW231123 have a stellar origin? | 26 | 24 | 26 |
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| **67** | Fumagalli | 2023 | Spin-eccentricity interplay in merging binary black holes | 24 | 26 | 26 |
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| **68** | Moore | 2021 | Population-informed priors in gravitational-wave astronomy | 26 | 26 | 26 |
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| **69** | Rosca-Mead | 2020 | Structure of neutron stars in massive scalar-tensor gravity | 23 | 26 | 26 |
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| **70** | Romero-Shaw | 2025 | GW200208_222617 as an eccentric black-hole binary merger: properties and astrophysical implications | 25 | 24 | 25 |
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| **71** | Pacilio | 2024 | Flexible mapping of ringdown amplitudes for nonprecessing binary black holes | 22 | 25 | 25 |
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| **72** | Boschini | 2025 | Orbital eccentricity in general relativity from catastrophe theory | 22 | 24 | 24 |
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| **73** | Sperhake | 2020 | Amplification of superkicks in black-hole binaries through orbital eccentricity | 24 | 24 | 24 |
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| **74** | Zhao | 2017 | Nutational resonances, transitional precession, and precession-averaged evolution in binary black-hole systems | 21 | 23 | 23 |
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| **80** | Nealon | 2022 | The Bardeen-Petterson effect in accreting supermassive black-hole binaries: disc breaking and critical obliquity | 21 | 14 | 21 |
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| **81** | Gangardt | 2021 | A taxonomy of black-hole binary spin precession and nutation | 17 | 20 | 20 |
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| **82** | Varma | 2021 | Up-down instability of binary black holes in numerical relativity | 17 | 19 | 19 |
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| **83** | Nobili | 2025 | Ringdown mode amplitudes of precessing binary black holes | 17 | 18 | 18 |
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| **84** | Gerosa | 2020 | The Bardeen-Petterson effect in accreting supermassive black-hole binaries: a systematic approach | 18 | 18 | 18 |
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| **83** | Gerosa | 2020 | The Bardeen-Petterson effect in accreting supermassive black-hole binaries: a systematic approach | 19 | 18 | 19 |
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| **84** | Nobili | 2025 | Ringdown mode amplitudes of precessing binary black holes | 17 | 18 | 18 |
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| **85** | Buscicchio | 2025 | A test for LISA foreground Gaussianity and stationarity. I. Galactic white-dwarf binaries | 17 | 17 | 17 |
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| **86** | Boschini | 2023 | Extending black-hole remnant surrogate models to extreme mass ratios | 16 | 17 | 17 |
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| **87** | Mould | 2023 | One to many: comparing single gravitational-wave events to astrophysical populations | 14 | 16 | 16 |
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| **88** | Gerosa | 2017 | filltex: Automatic queries to ADS and INSPIRE databases to fill LaTex bibliography | 13 | 16 | 16 |
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| **89** | Pacilio | 2024 | Catalog variance of testing general relativity with gravitational-wave data | 10 | 14 | 14 |
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| **90** | Tenorio | 2025 | Scalable data-analysis framework for long-duration gravitational waves from compact binaries using short Fourier transforms | 11 | 13 | 13 |
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| **91** | Gerosa | 2024 | Quick recipes for gravitational-wave selection effects | 13 | 13 | 13 |
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| **92** | Pedrotti | 2025 | Cosmology with the angular cross-correlation of gravitational-wave and galaxy catalogs: forecasts for next-generation interferometers and the Euclid survey | 10 | 12 | 12 |
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| **93** | Mould | 2024 | Calibrating signal-to-noise ratio detection thresholds using gravitational-wave catalogs | 11 | 12 | 12 |
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| **94** | Steinle | 2023 | The Bardeen-Petterson effect, disk breaking, and the spin orientations of supermassive black-hole binaries | 10 | 12 | 12 |
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| **95** | Reali | 2020 | Mapping the asymptotic inspiral of precessing binary black holes to their merger remnants | 10 | 12 | 12 |
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| **92** | Mould | 2024 | Calibrating signal-to-noise ratio detection thresholds using gravitational-wave catalogs | 11 | 12 | 12 |
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| **93** | Steinle | 2023 | The Bardeen-Petterson effect, disk breaking, and the spin orientations of supermassive black-hole binaries | 10 | 12 | 12 |
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| **94** | Reali | 2020 | Mapping the asymptotic inspiral of precessing binary black holes to their merger remnants | 10 | 12 | 12 |
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| **95** | Pedrotti | 2025 | Cosmology with the angular cross-correlation of gravitational-wave and galaxy catalogs: forecasts for next-generation interferometers and the Euclid survey | 10 | 11 | 11 |
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| **96** | De Renzis | 2022 | Characterization of merging black holes with two precessing spins | 8 | 11 | 11 |
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| **97** | Gangardt | 2022 | Constraining black-hole binary spin precession and nutation with sequential prior conditioning | 10 | 11 | 11 |
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| **98** | Fabbri | 2025 | Reconstructing parametric gravitational-wave population fits from non-parametric results without refitting the data | 9 | 10 | 10 |
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_group.md

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