NONLINEAR GRAVITATIONAL-WAVE MEMORY FROM BINARY BLACK HOLE MERGERS
暂无分享,去创建一个
[1] Marc Favata,et al. Post-Newtonian corrections to the gravitational-wave memory for quasicircular, inspiralling compact binaries , 2008, 0812.0069.
[2] Thibault Damour,et al. Improved resummation of post-Newtonian multipolar waveforms from circularized compact binaries , 2008, 0811.2069.
[3] Lawrence E. Kidder,et al. High-accuracy waveforms for binary black hole inspiral, merger, and ringdown , 2008, 0810.1767.
[4] Marc Favata. Gravitational-wave memory revisited: Memory from the merger and recoil of binary black holes , 2008, 0811.3451.
[5] Edward K. Porter,et al. Massive black-hole binary inspirals: results from the LISA parameter estimation taskforce , 2008, 0811.1011.
[6] T. Damour,et al. Accurate effective-one-body waveforms of inspiralling and coalescing black-hole binaries , 2008, 0803.3162.
[7] T. Damour. Introductory lectures on the Effective One Body formalism , 2008, 0802.4047.
[8] B. Iyer,et al. The third post-Newtonian gravitational wave polarizations and associated spherical harmonic modes for inspiralling compact binaries in quasi-circular orbits , 2008, 0802.1249.
[9] T. Damour,et al. Faithful Effective-One-Body waveforms of equal-mass coalescing black-hole binaries , 2007, 0712.3003.
[10] T. Damour,et al. Comparing effective-one-body gravitational waveforms to accurate numerical data , 2007, 0711.2628.
[11] S. McWilliams,et al. Toward faithful templates for non-spinning binary black holes using the effective-one-body approach , 2007, 0706.3732.
[12] T. Damour,et al. Final spin of a coalescing black-hole binary: An effective-one-body approach , 2007, 0704.3550.
[13] S. Babak,et al. An overview of the second round of the Mock LISA Data Challenges , 2007, gr-qc/0701170.
[14] Bang-Yen Chen,et al. Marginally trapped surfaces in Lorentzian space forms with positive relative nullity , 2007 .
[15] C. Will,et al. Gravitational-wave spectroscopy of massive black holes with the space interferometer LISA , 2005, gr-qc/0512160.
[16] B. Iyer,et al. The 2.5PN gravitational wave polarizations from inspiralling compact binaries in circular orbits , 2004, gr-qc/0404085.
[17] John Ellis,et al. Int. J. Mod. Phys. , 2005 .
[18] C. Cutler,et al. Confusion Noise from LISA Capture Sources , 2004, gr-qc/0409010.
[19] Curt Cutler,et al. LISA capture sources: Approximate waveforms, signal-to-noise ratios, and parameter estimation accuracy , 2003, gr-qc/0310125.
[20] Kennefick. Prospects for detecting the Christodoulou memory of gravitational waves from a coalescing compact binary and using it to measure neutron-star radii. , 1994, Physical review. D, Particles and fields.
[21] Blanchet,et al. Hereditary effects in gravitational radiation. , 1992, Physical review. D, Particles and fields.
[22] Thorne,et al. Gravitational-wave bursts with memory: The Christodoulou effect. , 1992, Physical review. D, Particles and fields.
[23] Wiseman,et al. Christodoulou's nonlinear gravitational-wave memory: Evaluation in the quadrupole approximation. , 1991, Physical review. D, Particles and fields.
[24] Christodoulou,et al. Nonlinear nature of gravitation and gravitational-wave experiments. , 1991, Physical review letters.
[25] L. Smarr. Gravitational radiation from distant encounters and from head-on collisions of black holes: The zero-frequency limit , 1977 .
[26] Irene A. Stegun,et al. Handbook of Mathematical Functions. , 1966 .