S. Perez-Gaviro
Sapienza University of Rome
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Publication
Featured researches published by S. Perez-Gaviro.
Computing in Science and Engineering | 2009
F. Belletti; M. Cotallo; A. Cruz; L. A. Fernandez; A. Gordillo-Guerrero; M. Guidetti; A. Maiorano; F. Mantovani; Enzo Marinari; V. Martin-Mayor; A. Muoz-Sudupe; D. Navarro; Giorgio Parisi; S. Perez-Gaviro; Mauro Rossi; J. J. Ruiz-Lorenzo; Sebastiano Fabio Schifano; D. Sciretti; A. Tarancón; R. Tripiccione; J.L. Velasco; D. Yllanes; Gianpaolo Zanier
Janus is a modular, massively parallel, and reconfigurable FPGA-based computing system. Each Janus module has one computational core and one host. Janus is tailored to, but not limited to, the needs of a class of hard scientific applications characterized by regular code structure, unconventional data-manipulation requirements, and a few Megabits database. The authors discuss this configurable systems architecture and focus on its use for Monte Carlo simulations of statistical mechanics, as Janus performs impressively on this class of application.
Journal of Statistical Mechanics: Theory and Experiment | 2010
R. Alvarez Banos; A. Cruz; L. A. Fernandez; J. M. Gil-Narvion; A. Gordillo-Guerrero; M. Guidetti; A. Maiorano; F. Mantovani; Enzo Marinari; V. Martin-Mayor; J. Monforte-Garcia; A. Muñoz Sudupe; D. Navarro; Giorgio Parisi; S. Perez-Gaviro; J. J. Ruiz-Lorenzo; Sebastiano Fabio Schifano; B. Seoane; A. Tarancón; R. Tripiccione; D. Yllanes
We present a massive equilibrium simulation of the three-dimensional Ising spin glass at low temperatures. The Janus special-purpose computer has allowed us to equilibrate, using parallel tempering, L = 32 lattices down to T ≈ 0.64Tc. We demonstrate the relevance of equilibrium finite-size simulations to understand experimental non-equilibrium spin glasses in the thermodynamical limit by establishing a time-length dictionary. We conclude that non-equilibrium experiments performed on a time scale of one hour can be matched with equilibrium results on L ≈ 110 lattices. A detailed investigation of the probability distribution functions of the spin and link overlap, as well as of their correlation functions, shows that Replica Symmetry Breaking is the appropriate theoretical framework for the physically relevant length scales. Besides, we improve over existing methodologies to ensure equilibration in parallel tempering simulations.
Physical Review Letters | 2008
F. Belletti; M. Cotallo; A. Cruz; L. A. Fernandez; A. Gordillo-Guerrero; M. Guidetti; A. Maiorano; F. Mantovani; Enzo Marinari; V. Martin-Mayor; A. Muñoz Sudupe; D. Navarro; Giorgio Parisi; S. Perez-Gaviro; J. J. Ruiz-Lorenzo; Sebastiano Fabio Schifano; D. Sciretti; A. Tarancón; R. Tripiccione; J. L. Velasco; D. Yllanes
We study numerically the nonequilibrium dynamics of the Ising spin glass, for a time spanning 11 orders of magnitude, thus approaching the experimentally relevant scale (i.e., seconds). We introduce novel analysis techniques to compute the coherence length in a model-independent way. We present strong evidence for a replicon correlator and for overlap equivalence. The emerging picture is compatible with noncoarsening behavior.
Physical Review Letters | 2006
Isabel Campos; M. Cotallo-Aban; Martin-Mayor; S. Perez-Gaviro; A. Tarancón
It is shown, by means of Monte Carlo simulation and finite size scaling analysis, that the Heisenberg spin glass undergoes a finite-temperature phase transition in three dimensions. There is a single critical temperature, at which both a spin glass and a chiral glass ordering develop. The Monte Carlo algorithm, adapted from lattice gauge theory simulations, makes it possible to thermalize lattices of size L = 32, larger than in any previous spin-glass simulation in three dimensions. High accuracy is reached thanks to the use of the Marenostrum supercomputer. The large range of system sizes studied allows us to consider scaling corrections.
Journal of Statistical Physics | 2009
F. Belletti; A. Cruz; L. A. Fernandez; A. Gordillo-Guerrero; M. Guidetti; A. Maiorano; F. Mantovani; Enzo Marinari; V. Martin-Mayor; J. Monforte; A. Muñoz Sudupe; D. Navarro; Giorgio Parisi; S. Perez-Gaviro; J. J. Ruiz-Lorenzo; Sebastiano Fabio Schifano; D. Sciretti; A. Tarancón; R. Tripiccione; D. Yllanes
Using the special-purpose computer Janus, we follow the nonequilibrium dynamics of the Ising spin glass in three dimensions for eleven orders of magnitude. The use of integral estimators for the coherence and correlation lengths allows us to study dynamic heterogeneities and the presence of a replicon mode and to obtain safe bounds on the Edwards-Anderson order parameter below the critical temperature. We obtain good agreement with experimental determinations of the temperature-dependent decay exponents for the thermoremanent magnetization. This magnitude is observed to scale with the much harder to measure coherence length, a potentially useful result for experimentalists. The exponents for energy relaxation display a linear dependence on temperature and reasonable extrapolations to the critical point. We conclude examining the time growth of the coherence length, with a comparison of critical and activated dynamics.
Physical Review B | 2009
L. A. Fernandez; V. Martin-Mayor; S. Perez-Gaviro; A. Tarancón; A. P. Young
We have investigated the phase transition in the Heisenberg spin glass using massive numerical simulations to study very large sizes, 483. A finite-size scaling analysis indicates that the data are compatible with the most economical scenario: a common transition temperature for spins and chiralities.
Physical Review B | 2013
Marco Baity-Jesi; Raquel A. Baños; A. Cruz; L. A. Fernandez; J. M. Gil-Narvion; A. Gordillo-Guerrero; D. Iñiguez; A. Maiorano; F. Mantovani; Enzo Marinari; V. Martin-Mayor; J. Monforte-Garcia; A. Muñoz Sudupe; D. Navarro; Giorgio Parisi; S. Perez-Gaviro; Marcello Pivanti; Federico Ricci-Tersenghi; J. J. Ruiz-Lorenzo; Sebastiano Fabio Schifano; B. Seoane; A. Tarancón; R. Tripiccione; D. Yllanes
We report a high-precision finite-size scaling study of the critical behavior of the three-dimensional Ising Edwards-Anderson model (the Ising spin glass). We have thermalized lattices up to L = 40 using the Janus dedicated computer. Our analysis takes into account leading-order corrections to scaling. We obtain Tc = 1.1019(29) for the critical temperature, ν = 2.562(42) for the thermal exponent, η = −0.3900(36) for the anomalous dimension, and ω = 1.12(10) for the exponent of the leading corrections to scaling. Standard (hyper)scaling relations yield α = −5.69(13), β = 0.782(10), and γ = 6.13(11). We also compute several universal quantities at Tc.
Proceedings of the National Academy of Sciences of the United States of America | 2012
Raquel A. Baños; A. Cruz; L. A. Fernandez; J. M. Gil-Narvion; A. Gordillo-Guerrero; M. Guidetti; D. Iñiguez; A. Maiorano; Enzo Marinari; V. Martin-Mayor; J. Monforte-Garcia; Antonio Muñoz Sudupe; D. Navarro; Giorgio Parisi; S. Perez-Gaviro; J. J. Ruiz-Lorenzo; Sebastiano Fabio Schifano; B. Seoane; A. Tarancón; P. Tellez; R. Tripiccione; D. Yllanes
Spin glasses are a longstanding model for the sluggish dynamics that appear at the glass transition. However, spin glasses differ from structural glasses in a crucial feature: they enjoy a time reversal symmetry. This symmetry can be broken by applying an external magnetic field, but embarrassingly little is known about the critical behavior of a spin glass in a field. In this context, the space dimension is crucial. Simulations are easier to interpret in a large number of dimensions, but one must work below the upper critical dimension (i.e., in d < 6) in order for results to have relevance for experiments. Here we show conclusive evidence for the presence of a phase transition in a four-dimensional spin glass in a field. Two ingredients were crucial for this achievement: massive numerical simulations were carried out on the Janus special-purpose computer, and a new and powerful finite-size scaling method.
Physical Review Letters | 2010
R. Alvarez Banos; A. Cruz; L. A. Fernandez; J. M. Gil-Narvion; A. Gordillo-Guerrero; M. Guidetti; A. Maiorano; F. Mantovani; Enzo Marinari; V. Martin-Mayor; J. Monforte-Garcia; A. Muñoz Sudupe; D. Navarro; Giorgio Parisi; S. Perez-Gaviro; J. J. Ruiz-Lorenzo; Sebastiano Fabio Schifano; B. Seoane; A. Tarancón; R. Tripiccione; D. Yllanes
We numerically study the aging properties of the dynamical heterogeneities in the Ising spin glass. We find that a phase transition takes place during the aging process. Statics-dynamics correspondence implies that systems of finite size in equilibrium have static heterogeneities that obey finite-size scaling, thus signaling an analogous phase transition in the thermodynamical limit. We compute the critical exponents and the transition point in the equilibrium setting, and use them to show that aging in dynamic heterogeneities can be described by a finite-time scaling ansatz, with potential implications for experimental work.
European Physical Journal-special Topics | 2012
Marco Baity-Jesi; Raquel A. Baños; A. Cruz; L. A. Fernandez; J. M. Gil-Narvion; A. Gordillo-Guerrero; M. Guidetti; D. Iñiguez; A. Maiorano; F. Mantovani; Enzo Marinari; V. Martin-Mayor; J. Monforte-Garcia; A. Muñoz Sudupe; D. Navarro; Giorgio Parisi; Marcello Pivanti; S. Perez-Gaviro; Federico Ricci-Tersenghi; J. J. Ruiz-Lorenzo; Sebastiano Fabio Schifano; B. Seoane; A. Tarancón; P. Tellez; R. Tripiccione; D. Yllanes
We describe Janus, a massively parallel FPGA-based computer optimized for the simulation of spin glasses, theoretical models for the behavior of glassy materials. FPGAs (as compared to GPUs or many-core processors) provide a complementary approach to massively parallel computing. In particular, our model problem is formulated in terms of binary variables, and floating-point operations can be (almost) completely avoided. The FPGA architecture allows us to run many independent threads with almost no latencies in memory access, thus updating up to 1024 spins per cycle. We describe Janus in detail and we summarize the physics results obtained in four years of operation of this machine; we discuss two types of physics applications: long simulations on very large systems (which try to mimic and provide understanding about the experimental non-equilibrium dynamics), and low-temperature equilibrium simulations using an artificial parallel tempering dynamics. The time scale of our non-equilibrium simulations spans eleven orders of magnitude (from picoseconds to a tenth of a second). On the other hand, our equilibrium simulations are unprecedented both because of the low temperatures reached and for the large systems that we have brought to equilibrium. A finite-time scaling ansatz emerges from the detailed comparison of the two sets of simulations. Janus has made it possible to perform spin-glass simulations that would take several decades on more conventional architectures. The paper ends with an assessment of the potential of possible future versions of the Janus architecture, based on state-of-the-art technology.