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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 76100 of 2050 papers

TitleStatusHype
Small or Large? Zero-Shot or Finetuned? Guiding Language Model Choice for Specialized Applications in Healthcare0
A Novel Parameter-Tying Theorem in Multi-Model Adaptive Systems: Systematic Approach for Efficient Model Selection0
OpenTCM: A GraphRAG-Empowered LLM-based System for Traditional Chinese Medicine Knowledge Retrieval and Diagnosis0
Optimizing Hard Thresholding for Sparse Model Discovery0
Evaluating Meta-Regression Techniques: A Simulation Study on Heterogeneity in Location and Time0
Topological model selection: a case-study in tumour-induced angiogenesis0
Transfer Learning via Auxiliary Labels with Application to Cold-Hardiness Prediction0
Can Pre-training Indicators Reliably Predict Fine-tuning Outcomes of LLMs?0
Physics-Aware Initialization Refinement in Code-Aided EM for Blind Channel Estimation0
Meta-Evaluating Local LLMs: Rethinking Performance Metrics for Serious Games0
Beyond Glucose-Only Assessment: Advancing Nocturnal Hypoglycemia Prediction in Children with Type 1 Diabetes0
Has the Creativity of Large-Language Models peaked? An analysis of inter- and intra-LLM variability0
What the HellaSwag? On the Validity of Common-Sense Reasoning BenchmarksCode0
Robust Social Planning0
M-Prometheus: A Suite of Open Multilingual LLM JudgesCode5
Model Selection via MCRB Optimization0
Quantifying Robustness: A Benchmarking Framework for Deep Learning Forecasting in Cyber-Physical SystemsCode0
Instruction-Guided Autoregressive Neural Network Parameter Generation0
Efficient Model Selection for Time Series Forecasting via LLMs0
Optimizing Humor Generation in Large Language Models: Temperature Configurations and Architectural Trade-offs0
Why risk matters for protein binder design0
AutoML Algorithms for Online Generalized Additive Model Selection: Application to Electricity Demand Forecasting0
Neural Bayes inference for complex bivariate extremal dependence modelsCode0
Reinforcement Learning for Machine Learning Model Deployment: Evaluating Multi-Armed Bandits in ML Ops Environments0
Collab: Controlled Decoding using Mixture of Agents for LLM Alignment0
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