Preface |
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Introduction to Statistical Methods |
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1 | (18) |
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The random walk in one dimension |
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2 | (2) |
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Mean values and standard deviations |
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4 | (2) |
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Gaussian limit of the binomial distribution |
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6 | (3) |
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Distribution of several random variables. Continuous distributions |
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9 | (3) |
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Probability distribution for the generalized random walk in one dimension. The Gaussian limit |
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12 | (7) |
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15 | (4) |
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Statistical Description of a Physical System |
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19 | (20) |
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Specification of the microscopic states of a quantum system |
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20 | (5) |
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Specification of the microscopic state of a classical system of particles |
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25 | (4) |
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Ergodic hyphotesis and fundamental postulate of statistical mechanics |
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29 | (4) |
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Formulation of statistical mechanics for quantum systems |
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33 | (6) |
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35 | (4) |
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Overview of Classical Thermodynamics |
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39 | (22) |
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Postulates of equilibrium thermodynamics |
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39 | (2) |
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Intensive parameters of thermodynamics |
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41 | (3) |
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Equilibrium between two thermodynamic systems |
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44 | (3) |
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The Euler and Gibbs-Duhem relations |
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47 | (1) |
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Thermodynamic derivatives of physical interest |
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47 | (1) |
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48 | (4) |
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52 | (4) |
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Variational principles of thermodynamics |
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56 | (5) |
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59 | (2) |
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61 | (24) |
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Thermal interaction between two microscopic systems |
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62 | (3) |
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Thermal and mechanical interaction between two systems |
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65 | (2) |
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Connection between the microcanonical ensemble and thermodynamics |
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67 | (12) |
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Classical monatomic ideal gas |
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79 | (6) |
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82 | (3) |
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85 | (18) |
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Ideal paramagnet of spin 1/2 |
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91 | (2) |
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93 | (2) |
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Particles with two energy levels |
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95 | (2) |
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97 | (6) |
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98 | (5) |
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The Classical Gas in the Canonical Formalism |
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103 | (18) |
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Ideal classical monatomic gas |
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105 | (2) |
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The Maxwell-Boltzmann distribution |
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107 | (1) |
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The theorem of equipartition of energy |
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108 | (1) |
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The classical monatomic gas of particles |
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109 | (4) |
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The thermodynamic limit of a continuum system |
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113 | (8) |
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117 | (4) |
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The Grand Canonical and Pressure Ensembles |
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121 | (20) |
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122 | (5) |
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The grand canonical ensemble |
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127 | (14) |
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137 | (4) |
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141 | (20) |
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Orbitals of a free particle |
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143 | (3) |
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Formulation of the statistical problem |
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146 | (3) |
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149 | (5) |
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Diluted gas of diatomic molecules |
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154 | (7) |
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157 | (4) |
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161 | (26) |
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Completely degenerate ideal Fermi gas |
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164 | (2) |
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The degenerate ideal Fermi gas (T < TF) |
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166 | (5) |
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171 | (5) |
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176 | (11) |
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182 | (5) |
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Free Bosons: Bose--Einstein Condensation; Photon Gas |
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187 | (24) |
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Bose--Einstein condensation |
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188 | (11) |
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Photon gas. Planck statistics |
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199 | (12) |
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208 | (3) |
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211 | (24) |
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211 | (9) |
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220 | (9) |
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Sketch of a theory of superfluidity |
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229 | (6) |
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232 | (3) |
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Phase Transitions and Critical Phenomena: Classical Theories |
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235 | (22) |
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Simple fluids. Van der Waals equation |
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236 | (8) |
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The simple uniaxial ferromagnet. The Curie--Weiss equation |
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244 | (7) |
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251 | (6) |
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254 | (3) |
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257 | (20) |
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Exact solution in one dimension |
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260 | (3) |
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Mean-field approximation for the Ising model |
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263 | (3) |
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266 | (2) |
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The Bethe--Peierls approximation |
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268 | (3) |
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Exact results on the square lattice |
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271 | (6) |
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273 | (4) |
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Scaling Theories and the Renormalization Group |
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277 | (28) |
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Scaling theory of the thermodynamic potentials |
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277 | (4) |
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Scaling of the critical correlations |
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281 | (2) |
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The Kadanoff construction |
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283 | (2) |
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Renormalization of the ferromagnetic Ising chain |
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285 | (3) |
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Renormalization of the Ising model on the square lattice |
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288 | (3) |
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General scheme of application of the renormalization group |
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291 | (4) |
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Renormalization group for the Ising ferromagnet on the triangular lattice |
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295 | (10) |
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301 | (4) |
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Nonequilibrium Phenomena: I. Kinetic Methods |
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305 | (26) |
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Boltzmann's kinetic method |
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306 | (12) |
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318 | (13) |
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326 | (5) |
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Nonequilibrium phenomena: II. Stochastic Methods |
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331 | (26) |
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Brownian motion. The Langevin equation |
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332 | (5) |
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The Fokker-Planck equation |
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337 | (3) |
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340 | (4) |
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The kinetic Ising model: Glauber's dynamics |
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344 | (8) |
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352 | (5) |
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354 | (3) |
Appendices |
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357 | (14) |
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A.1 Striling's asymptotic series |
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357 | (2) |
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359 | (1) |
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A.3 Dirac's delta function |
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360 | (2) |
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A.4 Volume of a hypersphere |
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362 | (1) |
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A.5 Jacobian transformations |
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363 | (2) |
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A.6 The saddle-point method |
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365 | (3) |
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368 | (3) |
Bibliography |
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371 | (4) |
Index |
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375 | |