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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 11511175 of 2050 papers

TitleStatusHype
Expert Finding in Community Question Answering: A Review0
ExpertMatcher: Automating ML Model Selection for Users in Resource Constrained Countries0
ExpertMatcher: Automating ML Model Selection for Clients using Hidden Representations0
Explainable Adaptive Tree-based Model Selection for Time Series Forecasting0
Explainable Multi-class Classification of Medical Data0
Explain To Me: Salience-Based Explainability for Synthetic Face Detection Models0
Exploration in Linear Bandits with Rich Action Sets and its Implications for Inference0
Exploration of Dark Chemical Genomics Space via Portal Learning: Applied to Targeting the Undruggable Genome and COVID-19 Anti-Infective Polypharmacology0
Exploratory Hidden Markov Factor Models for Longitudinal Mobile Health Data: Application to Adverse Posttraumatic Neuropsychiatric Sequelae0
Exploring Dynamic Novel View Synthesis Technologies for Cinematography0
Exploring linguistic feature and model combination for speech recognition based automatic AD detection0
Exploring the Potential of SSL Models for Sound Event Detection0
Exploring the Potentials and Challenges of Using Large Language Models for the Analysis of Transcriptional Regulation of Long Non-coding RNAs0
Exponential Tail Local Rademacher Complexity Risk Bounds Without the Bernstein Condition0
Extending Variability-Aware Model Selection with Bias Detection in Machine Learning Projects0
FA3L at SemEval-2017 Task 3: A ThRee Embeddings Recurrent Neural Network for Question Answering0
Face Recognition Using Deep Multi-Pose Representations0
Face Recognition using Optimal Representation Ensemble0
Factor-Augmented Regularized Model for Hazard Regression0
Factorized Asymptotic Bayesian Inference for Factorial Hidden Markov Models0
Factorized Asymptotic Bayesian Inference for Latent Feature Models0
Factors in Fashion: Factor Analysis towards the Mode0
fairml: A Statistician's Take on Fair Machine Learning Modelling0
Fair Community Detection and Structure Learning in Heterogeneous Graphical Models0
Fast and fully-automated histograms for large-scale data sets0
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