Related Experiment Video
Updated: Feb 3, 2026

Deep Neural Networks for Image-Based Dietary Assessment
Published on: March 13, 2021
Adaptive coupling of a deep neural network potential to a classical force field
Linfeng Zhang1, Han Wang2, Weinan E3
1Program in Applied and Computational Mathematics, Princeton University, Princeton, New Jersey 08544, USA.
Abstract:
An adaptive modeling method (AMM) that couples a deep neural network potential and a classical force field is introduced to address the accuracy-efficiency dilemma faced by the molecular simulation community. The AMM simulated system is decomposed into three types of regions. The first type captures the important phenomena in the system and requires high accuracy, for which we use the Deep Potential Molecular Dynamics (DeePMD) model in this work. The DeePMD model is trained to accurately reproduce the statistical properties of the ab initio molecular dynamics. The second type does not require high accuracy, and a classical force field is used to describe it in an efficient way. The third type is used for a smooth transition between the first and the second types of regions. By using a force interpolation scheme and imposing a thermodynamics force in the transition region, we make the DeePMD region embedded in the AMM simulated system as if it were embedded in a system that is fully described by the accurate potential. A representative example of the liquid water system is used to show the feasibility and promise of this method.
Related Concept Videos
System of Forces and Couples
The principle of transmissibility plays a crucial role in this process. According to...
Simplification of a Force and Couple System I
Simplification of a Force and Couple System: II
Force and Potential Energy in Three Dimensions
Force and Potential Energy in One Dimension
Finding Electric Potential From Electric Field

