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\BOOKMARK [0][-]{chapter*.8}{Contents}{}% 1
\BOOKMARK [0][-]{chapter*.9}{Introduction}{}% 2
\BOOKMARK [0][-]{chapter.1}{Equilibrium interface dynamics}{}% 3
\BOOKMARK [1][-]{section.1.1}{Models for equilibrium fields}{chapter.1}% 4
\BOOKMARK [2][-]{subsection.1.1.1}{Statics of systems with a finite number of degrees of freedom}{section.1.1}% 5
\BOOKMARK [2][-]{subsection.1.1.2}{Statistical field theory}{section.1.1}% 6
\BOOKMARK [2][-]{subsection.1.1.3}{Surface tension}{section.1.1}% 7
\BOOKMARK [1][-]{section.1.2}{Models for equilibrium interfaces}{chapter.1}% 8
\BOOKMARK [2][-]{subsection.1.2.1}{Basic continuous model}{section.1.2}% 9
\BOOKMARK [2][-]{subsection.1.2.2}{Effective dynamics of interface heights}{section.1.2}% 10
\BOOKMARK [3][-]{subsubsection.1.2.2.1}{Model A dynamics}{subsection.1.2.2}% 11
\BOOKMARK [3][-]{subsubsection.1.2.2.2}{Model B dynamics}{subsection.1.2.2}% 12
\BOOKMARK [1][-]{section.1.3}{Lattice models}{chapter.1}% 13
\BOOKMARK [2][-]{subsection.1.3.1}{The Ising model}{section.1.3}% 14
\BOOKMARK [2][-]{subsection.1.3.2}{The Solid-On-Solid Model}{section.1.3}% 15
\BOOKMARK [2][-]{subsection.1.3.3}{Transfer matrix}{section.1.3}% 16
\BOOKMARK [1][-]{section.1.4}{Systems driven by imposed hydrodynamic flows}{chapter.1}% 17
\BOOKMARK [1][-]{section.1.5}{Conclusion}{chapter.1}% 18
\BOOKMARK [0][-]{chapter.2}{Numerical methods}{}% 19
\BOOKMARK [1][-]{section.2.1}{Estimator}{chapter.2}% 20
\BOOKMARK [1][-]{section.2.2}{Monte Carlo Metropolis algorithm}{chapter.2}% 21
\BOOKMARK [2][-]{subsection.2.2.1}{Glauber dynamics}{section.2.2}% 22
\BOOKMARK [2][-]{subsection.2.2.2}{Kawasaki dynamics}{section.2.2}% 23
\BOOKMARK [1][-]{section.2.3}{Computing size dependent free energy}{chapter.2}% 24
\BOOKMARK [2][-]{subsection.2.3.1}{The Layer method}{section.2.3}% 25
\BOOKMARK [2][-]{subsection.2.3.2}{The Lopes-Jacquin-Holdsworth method}{section.2.3}% 26
\BOOKMARK [1][-]{section.2.4}{Tips and tricks}{chapter.2}% 27
\BOOKMARK [1][-]{section.2.5}{Conclusion}{chapter.2}% 28
\BOOKMARK [0][-]{chapter.3}{Equilibrium Interface models and their finite size effects}{}% 29
\BOOKMARK [1][-]{section.3.1}{The Casimir effect}{chapter.3}% 30
\BOOKMARK [2][-]{subsection.3.1.1}{Quantum Casimir effect}{section.3.1}% 31
\BOOKMARK [2][-]{subsection.3.1.2}{Lifshitz Theory}{section.3.1}% 32
\BOOKMARK [2][-]{subsection.3.1.3}{Critical Casimir effect}{section.3.1}% 33
\BOOKMARK [3][-]{subsubsection.3.1.3.1}{Bulk scaling for near critical systems}{subsection.3.1.3}% 34
\BOOKMARK [3][-]{subsubsection.3.1.3.2}{Finite size scaling}{subsection.3.1.3}% 35
\BOOKMARK [1][-]{section.3.2}{Finite size scaling in one dimensional interface models}{chapter.3}% 36
\BOOKMARK [2][-]{subsection.3.2.1}{Continuous models in one dimension}{section.3.2}% 37
\BOOKMARK [2][-]{subsection.3.2.2}{The confined elastic line}{section.3.2}% 38
\BOOKMARK [2][-]{subsection.3.2.3}{The Airy line}{section.3.2}% 39
\BOOKMARK [1][-]{section.3.3}{The generalized Lopes-Jacquin-Holdsworth Method}{chapter.3}% 40
\BOOKMARK [1][-]{section.3.4}{The confined solid on solid model}{chapter.3}% 41
\BOOKMARK [1][-]{section.3.5}{Conclusion}{chapter.3}% 42
\BOOKMARK [0][-]{chapter.4}{Beyond Solid-On-Solid : the Particles-Over-Particles model}{}% 43
\BOOKMARK [1][-]{section.4.1}{The model}{chapter.4}% 44
\BOOKMARK [1][-]{section.4.2}{M-particles POP system}{chapter.4}% 45
\BOOKMARK [1][-]{section.4.3}{Continuum Theory}{chapter.4}% 46
\BOOKMARK [1][-]{section.4.4}{Conclusion}{chapter.4}% 47
\BOOKMARK [0][-]{chapter.5}{Driven interfaces}{}% 48
\BOOKMARK [1][-]{section.5.1}{The effect of driving on model C interfaces}{chapter.5}% 49
\BOOKMARK [2][-]{subsection.5.1.1}{The underling two field model}{section.5.1}% 50
\BOOKMARK [2][-]{subsection.5.1.2}{Effective interface dynamics}{section.5.1}% 51
\BOOKMARK [2][-]{subsection.5.1.3}{A model of active interfaces}{section.5.1}% 52
\BOOKMARK [2][-]{subsection.5.1.4}{Conclusion}{section.5.1}% 53
\BOOKMARK [1][-]{section.5.2}{Driven SOS model}{chapter.5}% 54
\BOOKMARK [1][-]{section.5.3}{Conclusions}{chapter.5}% 55