Finding collective variables to describe some important coarse-grained information on physical systems, in particular metastable states, remains a key issue in molecular dynamics. Recently, machine learning techniques have been intensively used to complement and possibly bypass expert knowledge in order to construct collective variables. Our focus here is on neural network approaches based on autoencoders. We study some relevant mathematical properties of the loss function considered for training autoencoders and provide physical interpretations based on conditional variances and minimum energy paths. We also consider various extensions in order to better describe physical systems, by incorporating more information on transition states at saddle points, and/or allowing for multiple decoders in order to describe several transition paths. Our results are illustrated on toy two-dimensional systems and on alanine dipeptide.
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http://dx.doi.org/10.1021/acs.jpcb.3c07075 | DOI Listing |
Comput Biol Med
January 2025
Department of Mathematics, NED University of Engineering & Technology, Pakistan. Electronic address:
For consideration of uncertainties of a medicine dataset, a new conceptual architecture fuzzy three-valued logic is introduced in this research work. The proposed concept is applied to the heart disease dataset for the assessment of heart disease risk in individuals. By comparison of three binary (0,1) input variables, the variables' uncertainties and their collective impact can be analyzed that provide complete information leading to better outcome prediction.
View Article and Find Full Text PDFAlzheimers Dement
December 2024
Allen Institute for Brain Science, Seattle, WA, USA.
Background: Alzheimer's Disease is marked by the gradual aggregation of pathological proteins, Tau and beta-amyloid, throughout various areas of the brain. The progression of these pathologies follows a consistent pattern, impacting various cellular populations as it advances through each brain region. Previously, we used Bayesian algorithms to create a continuous progression score to mathematically capture the collective aggregation of multiple pathological variables within a specific brain region.
View Article and Find Full Text PDFBMC Med Educ
January 2025
Center for Education Development and Research in Health Professions (CEDAR), Lifelong Learning, Education and Assessment Research Network (LEARN), University of Groningen, University Medical Center Groningen, Groningen, the Netherlands.
Background: The transition to residency (TTR) goes along with new opportunities for learning and development, which can also be challenging, despite the availability of preparation courses designed to ease the transition process. Although the TTR highly depends on the organization, individual combined with organizational strategies that advance adaptation are rarely investigated. This study explores residents' strategies and experiences with organizational strategies to help them adapt to residency.
View Article and Find Full Text PDFFeature selection is essential in the analysis of molecular systems and many other fields, but several uncertainties remain: What is the optimal number of features for a simplified, interpretable model that retains essential information? How should features with different units be aligned, and how should their relative importance be weighted? Here, we introduce the Differentiable Information Imbalance (DII), an automated method to rank information content between sets of features. Using distances in a ground truth feature space, DII identifies a low-dimensional subset of features that best preserves these relationships. Each feature is scaled by a weight, which is optimized by minimizing the DII through gradient descent.
View Article and Find Full Text PDFCommunity Ment Health J
January 2025
Department of Social and Behavioral Sciences, College of Public Health, Temple University, 1700 N Broad St., Philadelphia, PA, 19121, USA.
Young adults with early psychosis often disengage from essential early intervention services (i.e., Coordinated Specialty Care or CSC in the United States).
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