Orbital Roulette: A New Method of Gravity Estimation from Observed Motions
Open Access
- 20 September 2004
- journal article
- Published by American Astronomical Society in The Astrophysical Journal
- Vol. 613 (1) , 224-237
- https://doi.org/10.1086/422908
Abstract
The traditional way of estimating the gravitational field from observed motions of test objects is based on the virial relation between their kinetic and potential energy. We find a more efficient method. It is based on the natural presumption that the objects are observed at a random moment of time and therefore have random orbital time phases. The proposed estimator, which we call "orbital roulette", checks the randomness of the phases. The method has the following advantages: (1) It estimates accurately Keplerian (point-mass) potentials as well as non-Keplerian potentials where the unknown gravitating mass is distributed in space. (2) It is a complete statistical estimator: it checks a trial potential and accepts it or rules it out with a certain significance level; the best-fit measurement is thus supplemented with error bars at any confidence level. (3) It needs no a priori assumptions about the distribution of orbital parameters of the test bodies. We test our estimator with Monte-Carlo-generated motions and demonstrate its efficiency. Useful applications include the Galactic Center, dark-matter halo of the Galaxy, and clusters of stars or galaxies.Comment: 30 pages, accepted to ApKeywords
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This publication has 12 references indexed in Scilit:
- The Stellar Cusp around the Supermassive Black Hole in the Galactic CenterThe Astrophysical Journal, 2003
- Stellar Disk in the Galactic Center: A Remnant of a Dense Accretion Disk?The Astrophysical Journal, 2003
- The First Measurement of Spectral Lines in a Short-Period Star Bound to the Galaxy’s Central Black Hole: A Paradox of YouthThe Astrophysical Journal, 2003
- Stellar dynamics in the Galactic Centre: proper motions and anisotropyMonthly Notices of the Royal Astronomical Society, 2000
- Is There a Cosmological Constant?The Astrophysical Journal, 1996
- The Structure of Cold Dark Matter HalosThe Astrophysical Journal, 1996
- Distant satellites as probes of our Galaxy's mass distributionThe Astrophysical Journal, 1987
- Methods for determining the masses of spherical systems. I - Test particles around a point massThe Astrophysical Journal, 1981
- Asymptotic Theory of Certain "Goodness of Fit" Criteria Based on Stochastic ProcessesThe Annals of Mathematical Statistics, 1952
- Confidence Limits for an Unknown Distribution FunctionThe Annals of Mathematical Statistics, 1941