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Variational Encoding of Complex Dynamics

About

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 systems, linearity assumptions can limit the compression of inherently nonlinear dynamics into just a few characteristic components. Recent work in the field of deep learning has led to the development of variational autoencoders (VAE), which are able to compress complex datasets into simpler manifolds. We present the use of a time-lagged VAE, or variational dynamics encoder (VDE), to reduce complex, nonlinear processes to a single embedding with high fidelity to the underlying dynamics. We demonstrate how the VDE is able to capture nontrivial dynamics in a variety of examples, including Brownian dynamics and atomistic protein folding. Additionally, we demonstrate a method for analyzing the VDE model, inspired by saliency mapping, to determine what features are selected by the VDE model to describe dynamics. The VDE presents an important step in applying techniques from deep learning to more accurately model and interpret complex biophysics.

Carlos X. Hern\'andez, Hannah K. Wayment-Steele, Mohammad M. Sultan, Brooke E. Husic, Vijay S. Pande• 2017

Related benchmarks

TaskDatasetResultRank
Correlation analysis with committor functionChignolin
Pearson Corr.0.778
4
Dynamic content preservationChignolin DESRES trajectory data
VAMP-11.985
4
Dynamic content preservationTrp-cage DESRES trajectory data
VAMP-11.9947
4
State discrimination analysisTrp-cage Folded state, DESRES trajectory
Average MLCV100
4
State discrimination analysisTrp-cage Unfolded state DESRES trajectory
Average MLCV0.87
4
State discrimination analysisBBA Folded state, DESRES trajectory
Average MLCV1
4
State discrimination analysisBBA Unfolded state, DESRES trajectory
Average MLCV1
4
State discrimination analysisChignolin Folded state, DESRES trajectory
Average MLCV84
4
State discrimination analysisChignolin Unfolded state, DESRES trajectory
Average MLCV-0.74
4
Steered Molecular DynamicsChignolin
RMSD2.08
4
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