SOTAVerified

Model Discovery

discovering PDEs from spatiotemporal data

Papers

Showing 51–87 of 87 papers

TitleStatusHype
PySINDy: A comprehensive Python package for robust sparse system identificationCode2
Quantum Model-Discovery—0
Causal KL: Evaluating Causal Discovery—0
A toolkit for data-driven discovery of governing equations in high-noise regimesCode0
Pre and Post Counting for Scalable Statistical-Relational Model Discovery—0
Precision and Fitness in Object-Centric Process Mining—0
Discovering PDEs from Multiple ExperimentsCode0
Feature Recommendation for Structural Equation Model Discovery in Process Mining—0
Sparsistent Model DiscoveryCode0
Learning normal form autoencoders for data-driven discovery of universal,parameter-dependent governing equationsCode0
Fully differentiable model discovery—0
Model discovery in the sparse sampling regimeCode0
Gaussian processes meet NeuralODEs: A Bayesian framework for learning the dynamics of partially observed systems from scarce and noisy dataCode1
Neuro-Reachability of Networked Microgrids—0
OrgMining 2.0: A Novel Framework for Organizational Model Mining from Event Logs—0
Sparsely constrained neural networks for model discovery of PDEsCode1
Causal Inductive Synthesis Corpus—0
Discovery of Governing Equations with Recursive Deep Neural Networks—0
Automatic Differentiation to Simultaneously Identify Nonlinear Dynamics and Extract Noise Probability Distributions from DataCode1
Learning Equations from Biological Data with Limited Time SamplesCode0
Physics-informed learning of governing equations from scarce dataCode1
Bayesian differential programming for robust systems identification under uncertaintyCode1
Computational model discovery with reinforcement learning—0
DeepMoD: Deep learning for Model Discovery in noisy dataCode1
A Unified Framework for Sparse Relaxed Regularized Regression: SR3—0
Learning Cognitive Models using Neural Networks—0
Recursion Aware Modeling and Discovery For Hierarchical Software Event Log Analysis (Extended)—0
Learning Deep Neural Network Representations for Koopman Operators of Nonlinear Dynamical Systems—0
DeepArchitect: Automatically Designing and Training Deep ArchitecturesCode0
Mining Local Process Models—0
Anvaya: An Algorithm and Case-Study on Improving the Goodness of Software Process Models generated by Mining Event-Log Data in Issue Tracking System—0
FactorBase: SQL for Learning A Multi-Relational Graphical Model—0
Neural Activation Constellations: Unsupervised Part Model Discovery with Convolutional Networks—0
GPTIPS 2: an open-source software platform for symbolic data mining—0
Proof Supplement - Learning Sparse Causal Models is not NP-hard (UAI2013)—0
Learning Sparse Causal Models is not NP-hard—0
A Nonparametric Bayesian Approach to Acoustic Model Discovery—0
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