Numerically Discovered Inherent States are Always Protocol Dependent in Jammed Packings

Fuente: arXiv
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Main Authors: Bautista, Eddie, Corwin, Eric I.
Format: Preprint
Published: 2025
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author Bautista, Eddie
Corwin, Eric I.
author_facet Bautista, Eddie
Corwin, Eric I.
contents The energy landscape for soft sphere packings exists in a high-dimensional space and plays host to an astronomical number of local minima in a hierarchical and ultrametric arrangement. Each point in the landscape is a configuration that can be unambiguously mapped to its inherent state, defined as the local minimum that the configuration will flow to under perfectly overdamped continuous dynamics. Typically, discrete in time dynamics are used to computationally find local minima, but it is not known whether these algorithms are capable of reliably finding inherent states. Here, we use steepest descent dynamics to find the distribution of the largest time step, $δ_\textrm{best}$, which finds the inherent state. We find that for systems of $N$ particles, $δ_\textrm{best}$ is approximately proportional to $N^{-3}$, and weakly dependent on d and $φ$. We argue that the proportionality is due to saddle points in the energy landscape. Our results suggest that it is impossible, in practice, to reliably find inherent states for systems of about 64 particles or more.
format Preprint
id arxiv_https___arxiv_org_abs_2508_09284
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Numerically Discovered Inherent States are Always Protocol Dependent in Jammed Packings
Bautista, Eddie
Corwin, Eric I.
Soft Condensed Matter
The energy landscape for soft sphere packings exists in a high-dimensional space and plays host to an astronomical number of local minima in a hierarchical and ultrametric arrangement. Each point in the landscape is a configuration that can be unambiguously mapped to its inherent state, defined as the local minimum that the configuration will flow to under perfectly overdamped continuous dynamics. Typically, discrete in time dynamics are used to computationally find local minima, but it is not known whether these algorithms are capable of reliably finding inherent states. Here, we use steepest descent dynamics to find the distribution of the largest time step, $δ_\textrm{best}$, which finds the inherent state. We find that for systems of $N$ particles, $δ_\textrm{best}$ is approximately proportional to $N^{-3}$, and weakly dependent on d and $φ$. We argue that the proportionality is due to saddle points in the energy landscape. Our results suggest that it is impossible, in practice, to reliably find inherent states for systems of about 64 particles or more.
title Numerically Discovered Inherent States are Always Protocol Dependent in Jammed Packings
topic Soft Condensed Matter
url https://arxiv.org/abs/2508.09284