International audienceWe study rough high-dimensional landscapes in which an increasingly stronger preference for a given configuration emerges. Such energy landscapes arise in glass physics and inference. In particular, we focus on random Gaussian functions and on the spiked-tensor model and generalizations. We thoroughly analyze the statistical properties of the corresponding landscapes and characterize the associated geometrical phase transitions. In order to perform our study, we develop a framework based on the Kac-Rice method that allows us to compute the complexity of the landscape, i.e., the logarithm of the typical number of stationary points and their Hessian. This approach generalizes the one used to compute rigorously the anneal...
We present a simple mathematical model of glassy dynamics seen as a random walk in a directed weight...
13 pages, 4 figures. This version was initially submitted to Nature Communications in December 2013....
13 pages, 4 figures. This version was initially submitted to Nature Communications in December 2013....
International audienceWe study rough high-dimensional landscapes in which an increasingly stronger p...
International audienceWe study rough high-dimensional landscapes in which an increasingly stronger p...
We study rough high-dimensional landscapes in which an increasingly stronger preference for a given ...
We study rough high-dimensional landscapes in which an increasingly stronger preference for a given ...
We analyze the energy barriers that allow escapes from a given local minimum in a complex high-dimen...
We present a simple mathematical model of glassy dynamics seen as a random walk in a directed weight...
We present a simple mathematical framework for the description of the dynamics of glassy systems in ...
We present a simple mathematical framework for the description of the dynamics of glassy systems in ...
26 pages, 10 figuresInternational audienceWe present a simple mathematical framework for the descrip...
Glasses are amorphous solids whose constituent particles are caged by their neighbours and thus cann...
We present a simple mathematical model of glassy dynamics seen as a random walk in a directed weight...
International audienceWe present a simple mathematical model of glassy dynamics seen as a random wal...
We present a simple mathematical model of glassy dynamics seen as a random walk in a directed weight...
13 pages, 4 figures. This version was initially submitted to Nature Communications in December 2013....
13 pages, 4 figures. This version was initially submitted to Nature Communications in December 2013....
International audienceWe study rough high-dimensional landscapes in which an increasingly stronger p...
International audienceWe study rough high-dimensional landscapes in which an increasingly stronger p...
We study rough high-dimensional landscapes in which an increasingly stronger preference for a given ...
We study rough high-dimensional landscapes in which an increasingly stronger preference for a given ...
We analyze the energy barriers that allow escapes from a given local minimum in a complex high-dimen...
We present a simple mathematical model of glassy dynamics seen as a random walk in a directed weight...
We present a simple mathematical framework for the description of the dynamics of glassy systems in ...
We present a simple mathematical framework for the description of the dynamics of glassy systems in ...
26 pages, 10 figuresInternational audienceWe present a simple mathematical framework for the descrip...
Glasses are amorphous solids whose constituent particles are caged by their neighbours and thus cann...
We present a simple mathematical model of glassy dynamics seen as a random walk in a directed weight...
International audienceWe present a simple mathematical model of glassy dynamics seen as a random wal...
We present a simple mathematical model of glassy dynamics seen as a random walk in a directed weight...
13 pages, 4 figures. This version was initially submitted to Nature Communications in December 2013....
13 pages, 4 figures. This version was initially submitted to Nature Communications in December 2013....