Submitted:
25 January 2025
Posted:
27 January 2025
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Abstract
Keywords:
1. Gravitational Waves as Standard Sirens for Cosmological Distance Measurement
1.1. Dark Sirens and Non-EM Distance Estimation
1.2. Gravitational Wave Astronomy and LIGO’s Observational Runs
1.3. Gravitational Waves as Standard Sirens
1.4. Waveform Models in Gravitational Wave Analysis: IMRPhenomD
1.5. Current Challenges in Distance Measurement Without Electromagnetic Counterparts
1.6. Preliminary Measurements and Their Role in Constraining BBH Parameters
2. Gravitational Wave Analysis for Cosmological Distance Estimation
2.1. Circular Binary Systems and Basic Setup
- The GW frequency is twice that of the orbital frequency :
- The angular frequency , derived from Kepler’s third law:where G is the gravitational constant, and r is the separation between the black holes.
2.2. Gravitational Wave Luminosity and Energy Loss
2.3. Chirp Mass and Frequency Evolution
2.4. Gravitational Wave Strain and Distance to the Source
2.5. Application of the Model to LIGO Data
2.5.1. Data Sources: GWOSC and the Gravitational Wave Transient Catalogs
2.5.2. Parameter Extraction: Mass Ratio, Spin
2.5.3. Waveform Modeling Using IMRPhenomD
- Chirp Mass (): Derived from the component masses.
- Mass Ratio (q): Affects the waveform amplitude and phase evolution.
- Spin Parameters ( and ): The black hole spins influence the waveform morphology.
2.5.4. Distance Estimation Without Electromagnetic Counterparts
2.5.5. Validation of the Distance Estimates
2.5.6. Reducing Uncertainty in Distance Estimation
2.6. Data Sources and Analysis Procedures
- The component masses of the binary systems ( and ),
- The signal-to-noise ratio and strain data for the GW events,
- LIGO-reported luminosity distances for each event.
2.7. Waveform Modelling with IMRPhenomD
2.7.1. Steps in the Process
- Mass Values from GWOSC: The binary component masses ( and ) were retrieved from the GWOSC catalog.
- Waveform Model (IMRPhenomD): These masses were input into the IMRPhenomD model to calculate the GW strain () and frequency at merger (f).
- Input to Mathematical Model: The obtained strain and frequency values were used in our mathematical model for distance estimation.
2.8. Distance Calculation
2.8.1. Event Selection
2.8.2. Distance Comparison with LIGO Data
2.8.3. Statistical and Error Analysis
3. Results and Discussion
3.1. Summary of Distance Estimates
3.1.1. Key Observations
- GW150914 (GWTC-1): One of the earliest and most famous detections, our model gives a distance estimate of Mpc, which is very close to LIGO’s estimate of Mpc. The difference of around 100 Mpc is small, showing that our method aligns well for this BBH event with moderate component masses (, ).
- GW170104 (GWTC-1): For this event, LIGO reports a distance of Mpc, while our model estimates a distance of Mpc, resulting in a difference of 250 Mpc. The discrepancy is moderate and can be attributed to the higher component masses of this system (, ) and the fact that higher-mass systems tend to produce shorter-duration signals.
- GW190512_180714 (GWTC-2.1): This event involves lower-mass black holes (, ) and produced a distance estimate of Mpc in our model, compared to LIGO’s Mpc. The difference of 350 Mpc is relatively small and highlights the consistency of our model for lower-mass events, where the inspiral phase contributes significantly to the detected signal.
- GW191129_134029 (GWTC-3): Our model provides a distance of Mpc, while LIGO estimates Mpc. The difference of 230 Mpc is reasonable and falls within the expected range of variability for these types of events, which have moderate component masses (, ).
- GW191222_033537 (GWTC-3): This high-mass event (, ) has a distance estimate of Mpc from our model compared to LIGO’s Mpc. The difference of 890 Mpc is significant, which is consistent with our findings that larger discrepancies occur in higher-mass systems. The shorter-duration signals from high-mass mergers may explain these differences, as they are more sensitive to waveform modeling uncertainties.
- GW191126_115259 (GWTC-3): This event shows an excellent match between the two models. Our estimate of Mpc is close to LIGO’s Mpc, with a difference of only 30 Mpc. This suggests that for moderately massive systems, both models produce consistent results, reinforcing the reliability of our method for such systems.
3.2. Analysis of the Differences
3.2.1. Model Assumptions and Parameters
- Waveform Models: Both our model and LIGO’s distance estimates rely on waveform models, but the models may incorporate different assumptions about the mass ratio, spin, and other parameters. Our model focuses on using the GW strain and frequency at merger, while LIGO’s parameter estimation method incorporates a wider range of information, including priors on system inclination and spin.
- Mass Ratios and Spins: Events with large discrepancies between the two distance estimates often involve extreme mass ratios or high black hole spins. For example, in GW200224_222234 (GWTC-3), where the component masses are and , our model estimates a distance of Mpc, while LIGO estimates Mpc. The difference of 440 Mpc could be due to variations in how the mass ratio and spins are incorporated into the waveform models.
3.2.2. Impact of High Mass Systems
- GW190521 (GWTC-2.1): In this high-mass event (, ), our model estimates a distance of Mpc, while LIGO estimates Mpc, resulting in a difference of 650 Mpc. The relatively large difference is typical for high-mass events and underscores the need for more refined waveform models when dealing with such systems.
- GW200220_061928 (GWTC-3): Another high-mass event, with component masses and , shows a distance of Mpc from our model compared to LIGO’s Mpc, resulting in a difference of 740 Mpc. While this difference is still significant, it falls within LIGO’s large uncertainty range, showing that our model can produce competitive results even in high-mass systems.
3.2.3. Lower-Mass Systems and Longer Signals
- GW190412 (GWTC-2.1): Our model estimates a distance of Mpc, compared to LIGO’s Mpc. The difference of 225 Mpc is modest and falls within the uncertainty range of LIGO’s estimate. This consistency reflects the advantage of having a longer inspiral phase, which allows for more precise distance estimation.
- GW170608 (GWTC-1): With component masses of and , our model estimates a distance of Mpc, very close to LIGO’s Mpc. The small difference of 100 Mpc demonstrates that our model performs particularly well in lower-mass systems, where the inspiral dominates the GW signal.
3.3. Uncertainty in Distance Measurements
3.3.1. Uncertainty in LIGO Estimates
3.3.2. Uncertainty in Our Model
3.4. Implications for Gravitational Wave Cosmology
3.4.1. Hubble Constant Estimation
3.4.2. Characterizing Binary Black Hole Populations
3.5. Limitations and Future Work
- Uncertainty Estimates: Future work should focus on incorporating uncertainty bounds into our distance estimates. Adopting a Bayesian framework for parameter estimation would allow us to quantify uncertainties in a way that is directly comparable to LIGO’s methods.
- Refining Waveform Models: As the discrepancies in high-mass systems suggest, further refinement of the waveform models could improve the accuracy of distance estimates, particularly for short-duration signals dominated by the merger and ringdown phases. Incorporating higher-order effects, such as precession and eccentricity, may also help improve the performance of the model for such systems.
4. Conclusions
4.1. Utility as a Preliminary Estimator
4.2. Future Directions and Improvements
Acknowledgments
Appendix A. [
Appendix A.1. GWTC-3
| Event | GW Freq (Hz) | (max strain) | [Mpc] | [Mpc] | ||
| 11.80 | 7.90 | 608.67 | ||||
| GW191103_012549 | 18 | 5.5 | 408.29 | |||
| 9.6 | 9.6 | 570.21 | ||||
| 10.7 | 7.7 | 670.05 | ||||
| GW191105_143521 | 14.4 | 5.8 | 474.91 | |||
| 9.1 | 9.1 | 685.73 | ||||
| 65 | 47 | 86.27 | ||||
| GW191109_010717 | 76 | 34 | 80.85 | |||
| 62 | 54 | 92.21 | ||||
| 29 | 5.9 | 284.95 | ||||
| GW191113_071753 | 41 | 4.6 | 232.18 | |||
| 15 | 10.3 | 398.03 | ||||
| 12.1 | 8.3 | 596.49 | ||||
| GW191126_115259 | 17.6 | 5.9 | 474.12 | |||
| 10.2 | 9.9 | 515.54 | ||||
| 53 | 24 | 168.47 | ||||
| GW191127_050227 | 44 | 33 | 162.83 | |||
| 100 | 10 | 101.40 | ||||
| 10.7 | 6.7 | 668.56 | ||||
| GW191129_134029 | 14.8 | 5 | 576.95 | |||
| 8.6 | 8.2 | 691.36 | ||||
| 27.3 | 19.2 | 247.82 | ||||
| GW191204_110529 | 38.1 | 13.2 | 214.03 | |||
| 24.7 | 21.4 | 267.43 | ||||
| 11.7 | 8.4 | 578.32 | ||||
| GW191204_171526 | 15 | 6.7 | 494.07 | |||
| 10 | 9.7 | 604.58 | ||||
| 24.9 | 18.1 | 251.15 | ||||
| GW191215_223052 | 32 | 14 | 218.90 | |||
| 21.9 | 20.8 | 274.55 | ||||
| 12.1 | 7.7 | 566.39 | ||||
| GW191216_213338 | 16.7 | 5.8 | 464.74 | |||
| 9.9 | 9.3 | 649.65 | ||||
| 45.1 | 34.7 | 162.55 | ||||
| GW191222_033537 | 56 | 24.2 | 129.10 | |||
| 44 | 37.1 | 148.11 | ||||
| 49.4 | 37 | 150.35 | ||||
| GW191230_180458 | 63.4 | 25 | 129.11 | |||
| 48 | 39.8 | 130.22 | ||||
| 35.6 | 28.3 | 203.24 | ||||
| GW200112_155838 | 42.3 | 22.4 | 163.24 | |||
| 32.7 | 31.1 | 209.19 | ||||
| 42.2 | 32.6 | 179.29 | ||||
| GW200128_022011 | 53.8 | 23.4 | 142.01 | |||
| 42.1 | 34.1 | 166.51 |
| Event | GW Freq (Hz) | (max strain) | [Mpc] | [Mpc] | ||
| 34.5 | 29 | 210.98 | ||||
| GW200129_065458 | 44.4 | 19.7 | 163.62 | |||
| 32.3 | 31.4 | 174.43 | ||||
| 10.1 | 7.3 | 699.94 | ||||
| GW200202_154313 | 13.6 | 5.6 | 602.98 | |||
| 8.7 | 8.4 | 607.55 | ||||
| 37.7 | 27.4 | 167.20 | ||||
| GW200208_130117 | 47 | 20.1 | 143.84 | |||
| 33.7 | 31.5 | 184.55 | ||||
| 51 | 12.3 | 208.68 | ||||
| GW200208_222617 | 154 | 6.8 | 72.58 | |||
| 21.5 | 21 | 306.36 | ||||
| 35.6 | 27.1 | 172.22 | ||||
| GW200209_085452 | 46.1 | 19.3 | 156.65 | |||
| 34.9 | 28.8 | 160.62 | ||||
| 51 | 30 | 133.92 | ||||
| GW200216_220804 | 73 | 14 | 122.95 | |||
| 44 | 38 | 129.34 | ||||
| 37.5 | 27.9 | 184.77 | ||||
| GW200219_094415 | 47.6 | 19.5 | 142.23 | |||
| 35.3 | 30.6 | 158.96 | ||||
| 24.1 | 2.83 | 318.64 | ||||
| GW200210_092254 | 31.6 | 2.41 | 296.06 | |||
| 19.5 | 3.3 | 484.24 | ||||
| 87 | 61 | 59.42 | ||||
| GW200220_061928 | 127 | 36 | 61.4 | |||
| 87 | 64 | 61.24 | ||||
| 38.9 | 27.9 | 165.21 | ||||
| GW200220_124850 | 53 | 18.9 | 165.46 | |||
| 37.1 | 30.3 | 188.73 | ||||
| 40 | 32.7 | 155.04 | ||||
| GW200224_222234 | 46.7 | 25.5 | 144.89 | |||
| 37.5 | 35.5 | 166.10 | ||||
| 19.3 | 14 | 317.37 | ||||
| GW200225_060421 | 24.3 | 10.5 | 330.46 | |||
| 16.8 | 16.3 | 372.04 | ||||
| 37.8 | 20 | 179.98 | ||||
| GW200302_015811 | 46.5 | 14.3 | 196.96 | |||
| 29.3 | 28.1 | 213.67 | ||||
| 28.3 | 14.8 | 311.54 | ||||
| GW200306_093714 | 45.4 | 8.4 | 201.90 | |||
| 21.3 | 20.6 | 304.36 | ||||
| 60 | 24 | 130.21 | ||||
| GW200308_173609 | 226 | 11 | 34.07 | |||
| 60 | 31 | 135.51 | ||||
| 34.2 | 27.7 | 213.73 | ||||
| GW200311_115853 | 40.6 | 21.8 | 165.47 | |||
| 31.8 | 30.4 | 182.96 | ||||
| 12.1 | 7.8 | 615.84 | ||||
| GW200316_215756 | 23.3 | 4.9 | 334.34 | |||
| 10.2 | 9.8 | 657.86 | ||||
| 38 | 11.3 | 212.67 | ||||
| GW200322_091133 | 168 | 5.3 | 58.26 | |||
| 35.6 | 16 | 205.04 |
Appendix A.2. GWTC-2.1
| Event | GW Freq (Hz) | (max strain) | [Mpc] | [Mpc] | ||
| 85.00 | 20.00 | 125.90 | ||||
| GW190403_051519 | 52.0 | 46.3 | 128.27 | |||
| 112.8 | 11.6 | 104.06 | ||||
| 24.8 | 18.5 | 288.47 | ||||
| GW190408_181802 | 21.8 | 21.3 | 240.28 | |||
| 30.2 | 14.5 | 259.08 | ||||
| 27.7 | 9.0 | 317.07 | ||||
| GW190412 | 21.7 | 11.0 | 356.59 | |||
| 33.7 | 7.6 | 291.90 | ||||
| 33.7 | 24.2 | 216.13 | ||||
| GW190413_052954 | 30.7 | 27.3 | 191.53 | |||
| 44.1 | 17.2 | 197.98 | ||||
| 51.3 | 30.4 | 139.56 | ||||
| GW190413_134308 | 42.1 | 38.7 | 140.55 | |||
| 67.9 | 17.7 | 110.85 | ||||
| 42.0 | 32.0 | 153.30 | ||||
| GW190421_213856 | 40.3 | 34.6 | 170.22 | |||
| 52.1 | 22.2 | 134.55 | ||||
| 105.5 | 76.0 | 67.72 | ||||
| GW190426_190642 | 81.4 | 102.2 | 66.68 | |||
| 150.8 | 39.5 | 64.15 | ||||
| 41.3 | 28.3 | 168.25 | ||||
| GW190503_185404 | 35.8 | 33.6 | 179.96 | |||
| 51.6 | 19.1 | 145.93 | ||||
| 23.2 | 12.5 | 289.00 | ||||
| GW190512_180714 | 17.6 | 16.0 | 357.51 | |||
| 28.8 | 9.9 | 274.56 | ||||
| 36.0 | 18.3 | 216.07 | ||||
| GW190513_205428 | 26.3 | 25.7 | 251.96 | |||
| 46.6 | 13.6 | 196.17 | ||||
| 40.9 | 28.4 | 174.26 | ||||
| GW190514_065416 | 38.4 | 31.6 | 155.17 | |||
| 58.2 | 18.3 | 146.65 | ||||
| 39.2 | 24.0 | 232.12 | ||||
| GW190517_055101 | 31.4 | 30.0 | 226.00 | |||
| 43.9 | 16.1 | 213.38 | ||||
| 65.1 | 40.8 | 120.73 | ||||
| GW190519_153544 | 54.1 | 52.3 | 127.51 | |||
| 75.9 | 28.1 | 105.09 | ||||
| 98.4 | 57.2 | 67.32 | ||||
| GW190521 | 84.3 | 76.7 | 72.29 | |||
| 132.0 | 27.1 | 64.61 | ||||
| 43.4 | 33.4 | 141.33 | ||||
| GW190521_074359 | 38.6 | 37.9 | 141.82 | |||
| 49.2 | 26.6 | 138.15 | ||||
| 35.6 | 22.2 | 202.39 | ||||
| GW190527_092055 | 31.2 | 27.6 | 192.29 | |||
| 54.3 | 13.5 | 143.59 | ||||
| 71.8 | 44.8 | 105.45 | ||||
| GW190602_175927 | 60.3 | 57.2 | 112.36 | |||
| 89.9 | 25.2 | 96.31 | ||||
| 58.0 | 35.0 | 128.13 | ||||
| GW190620_030421 | 48.1 | 44.7 | 120.46 | |||
| 77.2 | 20.5 | 113.38 | ||||
| 35.1 | 24.0 | 202.84 | ||||
| GW190630_185205 | 29.6 | 29.5 | 184.04 | |||
| 41.6 | 18.8 | 190.56 |
| Event | GW Freq (Hz) | (max strain) | [Mpc] | [Mpc] | ||
| 54.1 | 40.5 | 119.68 | ||||
| GW190701_203306 | 49.2 | 46.1 | 125.55 | |||
| 66.7 | 28.4 | 126.81 | ||||
| 74.0 | 39.4 | 100.29 | ||||
| GW190706_222641 | 57.8 | 57.1 | 119.83 | |||
| 94.1 | 24.0 | 92.60 | ||||
| 12.1 | 7.9 | 597.48 | ||||
| GW190707_093326 | 10.1 | 9.5 | 597.22 | |||
| 14.7 | 6.6 | 538.16 | ||||
| 19.8 | 11.6 | 363.93 | ||||
| GW190708_232457 | 15.5 | 14.7 | 388.44 | |||
| 24.1 | 9.6 | 352.59 | ||||
| 36.6 | 19.9 | 227.33 | ||||
| GW190719_215514 | 29.9 | 25.5 | 204.97 | |||
| 78.7 | 10.6 | 119.47 | ||||
| 14.2 | 7.5 | 508.80 | ||||
| GW190720_000836 | 10.9 | 9.7 | 657.54 | |||
| 19.8 | 5.7 | 399.83 | ||||
| 11.8 | 6.3 | 587.20 | ||||
| GW190725_174728 | 8.8 | 8.4 | 636.18 | |||
| 21.9 | 3.8 | 392.66 | ||||
| 38.9 | 30.2 | 176.83 | ||||
| GW190727_060333 | 36.7 | 32.9 | 153.07 | |||
| 47.8 | 21.9 | 152.16 | ||||
| 12.5 | 8.0 | 611.85 | ||||
| GW190728_064510 | 10.2 | 9.7 | 643.16 | |||
| 19.4 | 5.4 | 438.47 | ||||
| 41.8 | 29.0 | 169.52 | ||||
| GW190731_140936 | 39.2 | 32.7 | 159.88 | |||
| 54.5 | 19.1 | 158.81 | ||||
| 37.7 | 27.6 | 158.57 | ||||
| GW190803_022701 | 35.2 | 31.0 | 193.27 | |||
| 47.5 | 19.1 | 183.88 | ||||
| 46.2 | 30.6 | 174.74 | ||||
| GW190805_211137 | 42.4 | 35.0 | 179.62 | |||
| 61.6 | 19.3 | 163.97 | ||||
| 23.3 | 2.6 | 397.19 | ||||
| GW190814 | 21.9 | 2.7 | 385.90 | |||
| 24.7 | 2.5 | 382.79 | ||||
| 31.9 | 25.8 | 186.38 | ||||
| GW190828_063405 | 30.7 | 27.8 | 232.45 | |||
| 37.3 | 20.5 | 201.60 | ||||
| 23.7 | 10.4 | 341.47 | ||||
| GW190828_065509 | 17.0 | 14.2 | 361.27 | |||
| 30.5 | 8.2 | 258.65 | ||||
| 43.8 | 34.2 | 155.30 | ||||
| GW190910_112807 | 40.8 | 37.0 | 140.62 | |||
| 51.4 | 26.9 | 158.34 | ||||
| 32.6 | 24.5 | 191.20 | ||||
| GW190915_235702 | 29.4 | 27.7 | 212.14 | |||
| 41.4 | 18.7 | 182.09 | ||||
| 43.8 | 23.3 | 163.07 | ||||
| GW190916_200658 | 35.8 | 31.2 | 191.05 | |||
| 63.7 | 13.3 | 130.09 | ||||
| 9.7 | 2.1 | 805.36 | ||||
| GW190917_114630 | 5.8 | 3.2 | 1204.02 | |||
| 13.1 | 1.7 | 630.70 |
| Event | GW Freq (Hz) | (max strain) | [Mpc] | [Mpc] | ||
| 8.8 | 5.1 | 893.84 | ||||
| GW190924_021846 | 7.0 | 6.3 | 867.21 | |||
| 13.1 | 3.6 | 612.60 | ||||
| 20.8 | 15.5 | 364.94 | ||||
| GW190925_232845 | 17.9 | 18.0 | 360.22 | |||
| 27.3 | 11.9 | 276.77 | ||||
| 41.1 | 20.4 | 160.75 | ||||
| GW190926_050336 | 31.8 | 28.6 | 172.09 | |||
| 61.9 | 12.2 | 119.08 | ||||
| 66.3 | 26.8 | 129.87 | ||||
| GW190929_012149 | 49.7 | 41.5 | 116.05 | |||
| 87.9 | 16.2 | 95.86 | ||||
| 14.2 | 6.9 | 601.86 | ||||
| GW190930_133541 | 10.2 | 9.3 | 687.56 | |||
| 22.2 | 4.8 | 427.92 |
Appendix A.3. GWTC-1
| Event | GW Freq (Hz) | (max strain) | [Mpc] | [Mpc] | ||
| 35.60 | 30.60 | 161.04 | ||||
| GW150914 | 40.3 | 26.2 | 186.26 | |||
| 33.6 | 32.5 | 160.78 | ||||
| 23.2 | 13.6 | 298.36 | ||||
| GW151012 | 38.1 | 8.8 | 220.24 | |||
| 17.7 | 17.7 | 345.92 | ||||
| 13.7 | 7.7 | 561.17 | ||||
| GW151226 | 22.5 | 5.2 | 398.78 | |||
| 10.5 | 9.9 | 682.11 | ||||
| 30.8 | 20.0 | 252.75 | ||||
| GW170104 | 38.1 | 15.4 | 212.24 | |||
| 25.2 | 24.9 | 219.55 | ||||
| 11.0 | 7.6 | 635.17 | ||||
| GW170608 | 16.5 | 5.4 | 560.25 | |||
| 9.3 | 9.0 | 591.09 | ||||
| 50.2 | 34.0 | 134.74 | ||||
| GW170729 | 66.4 | 23.9 | 140.68 | |||
| 43.1 | 40.0 | 146.68 | ||||
| 35.0 | 23.8 | 194.81 | ||||
| GW170809 | 43.3 | 18.6 | 180.98 | |||
| 29.1 | 28.9 | 202.24 | ||||
| 30.6 | 25.2 | 206.75 | ||||
| GW170814 | 36.2 | 21.2 | 211.31 | |||
| 28.0 | 27.6 | 211.35 | ||||
| 35.4 | 26.7 | 175.19 | ||||
| GW170818 | 42.9 | 21.5 | 171.87 | |||
| 31.0 | 30.7 | 179.73 | ||||
| 39.5 | 29.0 | 172.48 | ||||
| GW170823 | 50.7 | 21.2 | 164.82 | |||
| 35.7 | 32.8 | 184.08 |
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| Event | GW Freq(Hz) | (max strain) | (Model) [Mpc] | [Mpc] | ||
|---|---|---|---|---|---|---|
| 35.60 | 30.60 | 161.04 | ||||
| GW150914 | 40.3 | 26.2 | 186.26 | |||
| 33.6 | 32.5 | 160.78 | ||||
| 23.2 | 13.6 | 298.36 | ||||
| GW151012 | 38.1 | 8.8 | 220.24 | |||
| 17.7 | 17.7 | 345.92 | ||||
| 13.7 | 7.7 | 561.17 | ||||
| GW151226 | 22.5 | 5.2 | 398.78 | |||
| 10.5 | 9.9 | 682.11 | ||||
| 30.8 | 20.0 | 252.75 | ||||
| GW170104 | 38.1 | 15.4 | 212.24 | |||
| 25.2 | 24.9 | 219.55 | ||||
| 11.0 | 7.6 | 635.17 | ||||
| GW170608 | 16.5 | 5.4 | 560.25 | |||
| 9.3 | 9.0 | 591.09 | ||||
| 30.6 | 25.2 | 206.75 | ||||
| GW170814 | 36.2 | 21.2 | 211.31 | |||
| 28.0 | 27.6 | 211.35 | ||||
| 35.4 | 26.7 | 175.19 | ||||
| GW170818 | 42.9 | 21.5 | 171.87 | |||
| 31.0 | 30.7 | 179.73 | ||||
| 27.7 | 9.0 | 317.07 | ||||
| GW190412 | 21.7 | 11.0 | 356.59 | |||
| 33.7 | 7.6 | 291.90 | ||||
| 23.2 | 12.5 | 289.00 | ||||
| GW190512_180714 | 17.6 | 16.0 | 357.51 | |||
| 28.8 | 9.9 | 274.56 | ||||
| 98.4 | 57.2 | 67.32 | ||||
| GW190521 | 84.3 | 76.7 | 72.29 | |||
| 132.0 | 27.1 | 64.61 | ||||
| 65 | 47 | 86.27 | ||||
| GW191109_010717 | 76 | 34 | 80.85 | |||
| 62 | 54 | 92.21 | ||||
| 10.7 | 6.7 | 668.56 | ||||
| GW191129_134029 | 14.8 | 5 | 576.95 | |||
| 8.6 | 8.2 | 691.36 | ||||
| 45.1 | 34.7 | 162.55 | ||||
| GW191222_033537 | 56 | 24.2 | 129.10 | |||
| 44 | 37.1 | 148.11 | ||||
| 12.1 | 8.3 | 596.49 | ||||
| GW191126_115259 | 17.6 | 5.9 | 474.12 | |||
| 10.2 | 9.9 | 515.54 | ||||
| 40 | 32.7 | 155.04 | ||||
| GW200224_222234 | 46.7 | 25.5 | 144.89 | |||
| 37.5 | 35.5 | 166.10 | ||||
| 87 | 61 | 59.42 | ||||
| GW200220_061928 | 127 | 36 | 61.4 | |||
| 87 | 64 | 61.24 |
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