Novel ML model predicts solvation free energies from atom interactions.
arXiv research
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The need for advanced materials has led to the development of complex, multi-component alloys or solid-solution alloys. These materials have shown exceptional properties like strength, toughness, ductility, electrical and electronic properties. Current development of such material systems are hindered by expensive expe…
We present atomistic molecular dynamics simulations of two Polyethylene systems where all entanglements are trapped: a perfect network, and a melt with grafted chain ends. We examine microscopically at what level topological constraints can be considered as a collective entanglement effect, as in tube model theories, o…
One endeavour of modern physical chemistry is to use bottom-up approaches to design materials and drugs with desired properties. Here we introduce an atomistic structure learning algorithm (ASLA) that utilizes a convolutional neural network to build 2D compounds and layered structures atom by atom. The algorithm takes …
SchNetPack 2.0 enhances atomistic machine learning with improved neural networks.
In this work, we extend the SchNet architecture by using weighted skip connections to assemble the final representation. This enables us to study the relative importance of each interaction block for property prediction. We demonstrate on both the QM9 and MD17 dataset that their relative weighting depends strongly on t…
New framework embeds physics in coarse-grained models without big data.
New method uses normalizing flows to improve force fields for coarse-grained molecular dynamics.
Extending spatio-temporal scale limitations of models for complex atomistic systems considered in biochemistry and materials science necessitates the development of enhanced sampling methods. The potential acceleration in exploring the configurational space by enhanced sampling methods depends on the choice of collecti…
We present a hybrid continuum-atomistic scheme which combines molecular dynamics (MD) simulations with on-the-fly machine learning techniques for the accurate and efficient prediction of multiscale fluidic systems. By using a Gaussian process as a surrogate model for the computationally expensive MD simulations, we use…
A framework to compare atomistic descriptors and their transformations.
Optimizes atomic descriptors to reduce redundancy and improve machine learning models.
With the rise of deep neural networks for quantum chemistry applications, there is a pressing need for architectures that, beyond delivering accurate predictions of chemical properties, are readily interpretable by researchers. Here, we describe interpretation techniques for atomistic neural networks on the example of …
Discovery of atomistic systems with desirable properties is a major challenge in chemistry and material science. Here we introduce a novel, autoregressive, convolutional deep neural network architecture that generates molecular equilibrium structures by sequentially placing atoms in three-dimensional space. The model e…
TACE unifies scalar and tensorial modeling in Cartesian space for accurate, stable, and efficient atomistic predictions.
Introduce a thermodynamically informed, temperature-transferable MLCG framework for proteins.
New model predicts molecular wavefunctions and densities with unprecedented accuracy.
Study evaluates uncertainty quantification for atomistic neural networks, revealing complex relationships between error and uncertainty.
CG-BGs combine flow-based models with PMFs to sample large systems efficiently.
We seek to deepen understanding of the micro-foundations of institutionalization while contributing to a sociological theory of markets by investigating the puzzle of price bubbles in financial markets. We find that such markets, despite textbook conditions of high efficiency -- perfect information, atomistic agents, n…
Generative models accelerate molecular dynamics by four orders of magnitude.
Differentiable simulations control molecular Hamiltonians for desired outcomes.
Machine-learning of atomic-scale properties amounts to extracting correlations between structure, composition and the quantity that one wants to predict. Representing the input structure in a way that best reflects such correlations makes it possible to improve the accuracy of the model for a given amount of reference …
EGR refines and assesses protein complex structures.
Atomistic or ab-initio molecular dynamics simulations are widely used to predict thermodynamics and kinetics and relate them to molecular structure. A common approach to go beyond the time- and length-scales accessible with such computationally expensive simulations is the definition of coarse-grained molecular models.…
Deep Learning has been shown to learn efficient representations for structured data such as image, text or audio. In this chapter, we present neural network architectures that are able to learn efficient representations of molecules and materials. In particular, the continuous-filter convolutional network SchNet accura…
Ancient grain boundaries resemble atoms in their formation and properties.
The CAPM's market returns are endogenously determined, affecting all assets' expected returns.
ML4Chem offers a user-friendly platform for developing and deploying machine learning models in chemistry.
Machine learning advances chemistry and materials science by enabling large-scale exploration of chemical space based on quantum chemical calculations. While these models supply fast and accurate predictions of atomistic chemical properties, they do not explicitly capture the electronic degrees of freedom of a molecule…
Improved CG force-field learning from all-atom data.
Improved neural network models predict molecular and material properties efficiently.
The modeling of atomistic biomolecular simulations using kinetic models such as Markov state models (MSMs) has had many notable algorithmic advances in recent years. The variational principle has opened the door for a nearly fully automated toolkit for selecting models that predict the long-time kinetics from molecular…
Bayesian regression underestimates parameter uncertainties in noisy models.
Often the analysis of time-dependent chemical and biophysical systems produces high-dimensional time-series data for which it can be difficult to interpret which individual features are most salient. While recent work from our group and others has demonstrated the utility of time-lagged co-variate models to study such …
Transfer learning boosts chemically accurate neural network potentials for organic molecules.
Develops neural networks for reductive Lie groups, enhancing symmetry respect.
Molecular dynamics simulations provide theoretical insight into the microscopic behavior of materials in condensed phase and, as a predictive tool, enable computational design of new compounds. However, because of the large temporal and spatial scales involved in thermodynamic and kinetic phenomena in materials, atomis…
New method uses neural networks to improve free energy estimation.
New method designs antimicrobial peptides with high potency and low toxicity.
Surrogate-based analysis of interactions via local effect smooths
Factorization Machine (FM) is a widely used supervised learning approach by effectively modeling of feature interactions. Despite the successful application of FM and its many deep learning variants, treating every feature interaction fairly may degrade the performance. For example, the interactions of a useless featur…
A new method detects interactions in neural networks using topological analysis.
Unconstrained models learn physical symmetries effectively with simple data augmentation.
Wavelet scattering predicts material properties beyond training data.
iKF method uncovers complex variable interactions for scientific discovery.
A graph neural network detects beneficial feature interactions for recommender systems.
We describe and extract time-ordered multibody interactions from complex systems.