Method detects effects of synthesis parameters on plutonium oxide microstructure.
arXiv research
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We investigate Lie algebras endowed with a complex symplectic structure and develop a method, called \emph{complex symplectic oxidation}, to construct certain complex symplectic Lie algebras of dimension from those of dimension . We specialize this construction to the nilpotent case and apply complex symplec…
Paper quantifies uncertainties in EIS spectra of SOFCs, proposing VB method for online monitoring.
We show that the smooth geometry of a hyperbolic 3-manifold emerges from a classical spin system defined on a 2d discrete lattice, and moreover show that the process of this "dimensional oxidation" is equivalent with the dimensional reduction of a supersymmetric gauge theory from 4d to 3d. More concretely, we propose a…
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 …
Diffuse optical tomography (DOT) has been investigated as an alternative imaging modality for breast cancer detection thanks to its excellent contrast to hemoglobin oxidization level. However, due to the complicated non-linear photon scattering physics and ill-posedness, the conventional reconstruction algorithms are s…
New method uses machine learning to analyze catalyst reactions.
Deep learning detects corrosion in nuclear fuel canisters.
Superconductivity has been the focus of enormous research effort since its discovery more than a century ago. Yet, some features of this unique phenomenon remain poorly understood; prime among these is the connection between superconductivity and chemical/structural properties of materials. To bridge the gap, several m…
10D IIA Superspace is put on shell by imposing duality-symmetric Bianchi identities on super-flux densities.
Symmetry-electronic fingerprints reveal competing magnetic phases in two-dimensional materials.
One-step learning in crosspoint memory reduces computation time.
Scalable GP model tackles big data, categorical factors, and multiple responses.
Optimal engine operation during a transient driving cycle is the key to achieving greater fuel economy, engine efficiency, and reduced emissions. In order to achieve continuously optimal engine operation, engine calibration methods use a combination of static correlations obtained from dynamometer tests for steady-stat…
QTAML models quantum tunneling errors for AI robustness.
Study assesses data-driven and physics-based SGS models for transcritical combustion.
Unified super-symmetry and higher fluxes using super-Lie-infinity algebras.
CHILI datasets tackle inorganic nanomaterials, advancing graph machine learning.