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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 676700 of 2050 papers

TitleStatusHype
fairml: A Statistician's Take on Fair Machine Learning Modelling0
Strengthening structural baselines for graph classification using Local Topological ProfileCode0
Revealing Similar Semantics Inside CNNs: An Interpretable Concept-based Comparison of Feature Spaces0
Limits of Model Selection under Transfer Learning0
ALMERIA: Boosting pairwise molecular contrasts with scalable methods0
Adaptation to Misspecified Kernel Regularity in Kernelised Bandits0
Uni-QSAR: an Auto-ML Tool for Molecular Property PredictionCode3
Sparse Private LASSO Logistic Regression0
Deep learning models for price forecasting of financial time series: A review of recent advancements: 2020-20220
Auditing and Generating Synthetic Data with Controllable Trust Trade-offs0
E Pluribus Unum: Guidelines on Multi-Objective Evaluation of Recommender SystemsCode0
Efficient Deep Reinforcement Learning Requires Regulating Overfitting0
An XAI framework for robust and transparent data-driven wind turbine power curve modelsCode1
An Offline Metric for the Debiasedness of Click ModelsCode0
Cross or Wait? Predicting Pedestrian Interaction Outcomes at Unsignalized Crossings0
Modeling Transient Changes in Circadian Rhythms0
The Deep Latent Position Topic Model for Clustering and Representation of Networks with Textual Edges0
Priors for symbolic regressionCode0
How Graph Structure and Label Dependencies Contribute to Node Classification in a Large Network of DocumentsCode0
A principled approach to model validation in domain generalizationCode0
You Only Train Once: Learning a General Anomaly Enhancement Network with Random Masks for Hyperspectral Anomaly DetectionCode1
HuggingGPT: Solving AI Tasks with ChatGPT and its Friends in Hugging FaceCode6
Model Validation and Selection in Metabolic Flux Analysis and Flux Balance Analysis0
Explain To Me: Salience-Based Explainability for Synthetic Face Detection Models0
AutoEn: An AutoML method based on ensembles of predefined Machine Learning pipelines for supervised Traffic Forecasting0
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