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Model Selection

Given a set of candidate models, the goal of Model Selection is to select the model that best approximates the observed data and captures its underlying regularities. Model Selection criteria are defined such that they strike a balance between the goodness of fit, and the generalizability or complexity of the models.

Source: Kernel-based Information Criterion

Papers

Showing 10011025 of 2050 papers

TitleStatusHype
The smooth output assumption, and why deep networks are better than wide ones0
Determining Principal Component Cardinality through the Principle of Minimum Description Length0
The supremum principle selects simple, transferable models0
The Time-Varying Multivariate Autoregressive Index Model0
The topology of large Open Connectome networks for the human brain0
The Value of Information in Human-AI Decision-making0
The variational Laplace approach to approximate Bayesian inference0
Thompson Sampling-like Algorithms for Stochastic Rising Bandits0
Thresholded Graphical Lasso Adjusts for Latent Variables: Application to Functional Neural Connectivity0
Thresholding Procedures for High Dimensional Variable Selection and Statistical Estimation0
Time Resolution Dependence of Information Measures for Spiking Neurons: Atoms, Scaling, and Universality0
Time Series Anomaly Detection with label-free Model Selection0
Time series model selection with a meta-learning approach; evidence from a pool of forecasting algorithms0
Topic Modeling and Link-Prediction for Material Property Discovery0
Topic Stability over Noisy Sources0
Topological Data Analysis for Neural Network Analysis: A Comprehensive Survey0
Topological Data Analysis (TDA) Techniques Enhance Hand Pose Classification from ECoG Neural Recordings0
Topological model selection: a case-study in tumour-induced angiogenesis0
TopoQA: a topological deep learning-based approach for protein complex structure interface quality assessment0
To Translate or Not to Translate: A Systematic Investigation of Translation-Based Cross-Lingual Transfer to Low-Resource Languages0
To tree or not to tree? Assessing the impact of smoothing the decision boundaries0
Modeling User Behaviors in Machine Operation Tasks for Adaptive Guidance0
Towards a more efficient representation of imputation operators in TPOT0
Towards an Unsupervised Method for Model Selection in Few-Shot Learning0
Towards Arbitrary-View Face Alignment by Recommendation Trees0
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