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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 14011450 of 2050 papers

TitleStatusHype
Zero-Shot Embeddings Inform Learning and Forgetting with Vision-Language Encoders0
Zero-Shot Forecasting Mortality Rates: A Global Study0
Zero-shot Outlier Detection via Prior-data Fitted Networks: Model Selection Bygone!0
Zero-Shot Personalized Speech Enhancement through Speaker-Informed Model Selection0
Zero-shot prompt-based classification: topic labeling in times of foundation models in German Tweets0
Zero Training Overhead Portfolios for Learning to Solve Combinatorial Problems0
Gmail Smart Compose: Real-Time Assisted Writing0
Quantitative Overfitting Management for Human-in-the-loop ML Application Development with ease.ml/meter0
On the Problem of Text-To-Speech Model Selection for Synthetic Data Generation in Automatic Speech Recognition0
The Mismeasure of Man and Models: Evaluating Allocational Harms in Large Language Models0
Winners with Confidence: Discrete Argmin Inference with an Application to Model Selection0
BadJudge: Backdoor Vulnerabilities of LLM-as-a-Judge0
A Systematic Analysis of Base Model Choice for Reward Modeling0
IISE PG&E Energy Analytics Challenge 2025: Hourly-Binned Regression Models Beat Transformers in Load Forecasting0
Nonlinear Causal Discovery for Grouped Data0
3D Rigid Motion Segmentation with Mixed and Unknown Number of Models0
4-D Epanechnikov Mixture Regression in Light Field Image Compression0
AaltoNLP at SemEval-2022 Task 11: Ensembling Task-adaptive Pretrained Transformers for Multilingual Complex NER0
A Bandit Approach with Evolutionary Operators for Model Selection0
A Base Model Selection Methodology for Efficient Fine-Tuning0
Block-Term Tensor Decomposition Model Selection and Computation: The Bayesian Way0
A Bayesian Approach to Network Modularity0
A Bayesian constitutive model selection framework for biaxial mechanical testing of planar soft tissues: application to porcine aortic valves0
A Bayesian Perspective on Training Speed and Model Selection0
Absolute convergence and error thresholds in non-active adaptive sampling0
A Case for Dataset Specific Profiling0
Accelerated Bayesian parameter estimation and model selection for gravitational waves with normalizing flows0
Accelerating Psychometric Screening Tests With Bayesian Active Differential Selection0
Accessible, At-Home Detection of Parkinson's Disease via Multi-task Video Analysis0
Achieving Fairness with a Simple Ridge Penalty0
A closer look at parameter identifiability, model selection and handling of censored data with Bayesian Inference in mathematical models of tumour growth0
Parkinson's Disease Recognition Using SPECT Image and Interpretable AI: A Tutorial0
A Comparison between Deep Neural Nets and Kernel Acoustic Models for Speech Recognition0
A Comprehensive Evaluation of Large Language Models on Mental Illnesses in Arabic Context0
A Comprehensive Sustainable Framework for Machine Learning and Artificial Intelligence0
A Confident Information First Principle for Parametric Reduction and Model Selection of Boltzmann Machines0
A Consistent and Scalable Algorithm for Best Subset Selection in Single Index Models0
A convex pseudo-likelihood framework for high dimensional partial correlation estimation with convergence guarantees0
A coupled-mechanisms modelling framework for neurodegeneration0
A Critical Review of Large Language Models: Sensitivity, Bias, and the Path Toward Specialized AI0
Action-State Dependent Dynamic Model Selection0
Active Comparison of Prediction Models0
Active Learning Algorithms for Graphical Model Selection0
Active Learning for Undirected Graphical Model Selection0
Active Nearest-Neighbor Learning in Metric Spaces0
Adaptation to Misspecified Kernel Regularity in Kernelised Bandits0
Adapting the Linearised Laplace Model Evidence for Modern Deep Learning0
Adaptive and Calibrated Ensemble Learning with Dependent Tail-free Process0
Adaptive Anomaly Detection for Internet of Things in Hierarchical Edge Computing: A Contextual-Bandit Approach0
Adaptive Bayesian Linear Regression for Automated Machine Learning0
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