T-2: Difference between revisions
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In this set of problems, we use the replica method to study the equilibrium properties of a prototypical toy model of glasses, the spherical <math>p</math>-spin model. | In this set of problems, we use the replica method to study the equilibrium properties of a prototypical toy model of glasses, the spherical <math>p</math>-spin model. | ||
In the spherical <math>p</math>-spin model the configurations <math> \vec{\sigma}=(\sigma_1, \cdots, \sigma_N) </math> that the system can take satisfy the spherical constraint <math> \sum_{i=1}^N \sigma_i^2=N </math>, and the energy associated to each configuration is | In the spherical <math>p</math>-spin model the configurations <math> \vec{\sigma}=(\sigma_1, \cdots, \sigma_N) </math> that the system can take satisfy the spherical constraint <math> \sum_{i=1}^N \sigma_i^2=N </math>, and the energy associated to each configuration is | ||
Revision as of 23:04, 6 December 2023
In this set of problems, we use the replica method to study the equilibrium properties of a prototypical toy model of glasses, the spherical -spin model. In the spherical -spin model the configurations that the system can take satisfy the spherical constraint , and the energy associated to each configuration is
where the coupling constants are independent random variables with Gaussian distribution with zero mean and variance and is an integer.
Problem 1: the annealed free energy
In TD1, we defined the quenched free energy density as the quantity controlling the scaling of the typical value of the partition function . The annealed free energy instead controls the scaling of the average value of . It is defined by
Let us compute this quantity.
- Energy correlations. At variance with the REM, in the spherical -spin the energies at different configurations are correlated. Show that , where is the overlap between the two configurations. Why an we say that for this model converges with the REM discussed in the previous TD?
- Energy contribution. Show that computing boils down to computing the average . Compute this average. Hint: if X is a centered Gaussian variable with variance , then .
- Entropy contribution. The volume of a sphere of radius in dimension is given by . Use the large-N asymptotic of this to conclude the calculation of the annealed free energy.
Problem 2: the quenched free energy
- Heavy tails and concentration. ccc
- Inverse participation ratio. cccc