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Often, psychologists develop surveys as a means of gathering data. Surveys are lists of questions to be answered by research participants, and can be delivered as paper-and-pencil questionnaires, administered electronically, or conducted verbally. Generally, the survey itself can be completed in a short time, and the ease of administering a survey makes it easy to collect data from a large number of people.
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Related Experiment Video

Updated: Jan 30, 2026

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An extensive experimental survey of regression methods.

M Fernández-Delgado1, M S Sirsat1, E Cernadas1

  • 1Centro Singular de Investigación en Tecnoloxías da Información da USC (CiTIUS), University of Santiago de Compostela, Campus Vida, 15782, Santiago de Compostela, Spain.

Neural Networks : the Official Journal of the International Neural Network Society
|January 18, 2019
PubMed
Summary

This study compares 77 regression models across 19 families using 83 datasets. Top models like Cubist and Gradient Boosted Machine offer high accuracy, with at least one top-10 model achieving near-optimal performance for new regression tasks.

Keywords:
CubistExtremely randomized regression treeGradient boosted machineM5RegressionUCI machine learning repository

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Area of Science:

  • Machine Learning
  • Data Science
  • Statistical Modeling

Background:

  • Regression is a fundamental machine learning task with numerous algorithmic approaches.
  • Evaluating and comparing these diverse regression models is crucial for practical applications.
  • The UCI machine learning repository provides a comprehensive benchmark for regression algorithms.

Purpose of the Study:

  • To conduct a large-scale comparative analysis of 77 popular regression models.
  • To identify high-performing and efficient regression models across various datasets.
  • To provide guidance on selecting appropriate regression models for new problems.

Main Methods:

  • Evaluation of 77 regression models from 19 families.
  • Utilized 83 regression datasets from the UCI machine learning repository.
  • Performance metrics included squared correlation (R²), speed, and memory usage.

Main Results:

  • Cubist, Gradient Boosted Machine (gbm), Boosting Ensemble (bstTree), and M5 regression trees emerged as top performers.
  • Cubist achieved the best R² on 15.7% of datasets, with 89.1% within 0.2 difference.
  • Extremely Randomized Trees (extraTrees) achieved the best R² on 33.7% of datasets.
  • Least Angle Regression (lars) was the fastest model, while Non-Negative Least Squares (nnls) required the least memory.

Conclusions:

  • For new regression problems, models within the top-10 consistently achieve R² values close to the best attainable.
  • Model selection should consider a trade-off between performance (e.g., R²), speed, and computational resources.
  • The study provides empirical evidence to guide the selection of effective regression models.