Parallel time methods for computing a satellite's trajectory -

dc.contributor.authorKarim, Samah Wahid
dc.contributor.departmentComputational Science Program
dc.contributor.facultyFaculty of Arts and Sciences
dc.contributor.institutionAmerican University of Beirut
dc.date2014
dc.date.accessioned2015-02-03T10:43:42Z
dc.date.available2015-02-03T10:43:42Z
dc.date.issued2014
dc.date.submitted2014
dc.descriptionThesis. M.S. American University of Beirut. Computational Science Program, 2014. T:6038
dc.descriptionAdvisor : Dr. Nabil Nassif, Professor, Mathematics ; Members of Committee : Dr. Khalil Bitar, Professor, Physics ; Dr. Leonid Klushin, Professor, Physics.
dc.descriptionIncludes bibliographical references (leaves 84-87)
dc.description.abstractSolving time dependent ordinary differential equations in a time-parallel way was thought to be impossible since time integration is inherently sequential. However in recent years, several predictor-corrector schemes have been proposed in order to solve time dependent differential equations. The most prominent of these algorithms is the well known Parareal algorithm (Lions et al 2001,Gander et al 2007) and more recently the Adaptive Parallel Time Integration algorithm ``APTI''(Nassif et al 2005). Such method has been successfully applied to the problem that models the motion of a membrane element linked to a spring (Karam, Nassif, Erhel 2013). In this thesis, we implement APTI in order to calculate the trajectory of a satellite, governed by a perturbed Keplerian model. We present also a modified version of the Parareal algorithm that utilizes the convergence of some slices prior to the global convergence, in order to enhance execution time. In order to test the efficiency of APTI, we compare its results with those obtained by Parareal and Modified Parareal. We show speed-ups as well as deviation from trajectories computed on the basis of a sequential algorithm, indicating the efficiency of the APTI approach for relatively large periods of time.
dc.format.extent1 online resource (xi, 87 leaves) : color illustrations ; 30cm
dc.identifier.otherb18264876
dc.identifier.urihttp://hdl.handle.net/10938/10252
dc.language.isoen
dc.relation.ispartofTheses, Dissertations, and Projects
dc.subject.classificationT:006038 AUBNO
dc.subject.lcshSatellites -- Orbits.
dc.subject.lcshArtificial satellites -- Orbits.
dc.subject.lcshSpace trajectories.
dc.subject.lcshAdaptive computing systems.
dc.subject.lcshParallel algorithms.
dc.subject.lcshDifferential equations.
dc.titleParallel time methods for computing a satellite's trajectory -
dc.typeThesis

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