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Related Concept Videos

Genetic Screens02:46

Genetic Screens

Genetic screens are tools used to identify genes and mutations responsible for phenotypes of interest. Genetic screens help identify individuals or a group of people at risk of developing  genetic diseases and help them with early intervention, targeted therapy, and reproductive options.
Forward genetic screens
Forward or “classical” genetic screens involve creating random mutations in an organism’s DNA using radiation, mutagens, or insertion of additional bases, which result in visible changes...
Prediction Intervals01:03

Prediction Intervals

The interval estimate of any variable is known as the prediction interval. It helps decide if a point estimate is dependable.
However, the point estimate is most likely not the exact value of the population parameter, but close to it. After calculating point estimates, we construct interval estimates, called confidence intervals or prediction intervals. This prediction interval comprises a range of values unlike the point estimate and is a better predictor of the observed sample value, y. 
The...
End Point Prediction: Gran Plot01:07

End Point Prediction: Gran Plot

A Gran plot is used to predict the equivalence volume or endpoint of a potentiometric or acid-base titration without reaching the endpoint. Typically, titration data is collected as a function of the titrant's volume up to a point less than the equivalence volume and then transformed into a linear format. The straight line is extended to the x-axis, indicating the necessary titrant volume to achieve the equivalence point.
For potentiometric titration, the Gran plot is created by plotting the...
Assessment of radial pulse01:11

Assessment of radial pulse

Assessment of Radial Pulse
The radial pulse, located at the wrist, is often the preferred site for assessing peripheral pulse because of its accessibility and dependability. The process of determining the radial pulse involves several steps:
Genetic Variation01:25

Genetic Variation

Genetic variation is the diversity in DNA sequences found among individuals of the same species. This diversity is crucial for a species' survival because it helps organisms adapt to environmental changes. Genetic variation begins with fertilization, where an egg and sperm cell merge. Each of these cells carries 23 chromosomes, up to 46 in the fertilized egg. Chromosomes are long DNA strands that contain genes, the basic units of heredity.
Genes exist in different versions called alleles, which...

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Related Experiment Video

Updated: May 22, 2026

Identification and Classification of Position-specific GABAA Receptor Subunit Missense Variants for Their Role In Hippocampal Pyramidal Neurons
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Genome-enabled prediction of genetic values using radial basis function neural networks.

J M González-Camacho1, G de Los Campos, P Pérez

  • 1Colegio de Postgraduados, Montecillo, Edo. de México, Mexico.

TAG. Theoretical and Applied Genetics. Theoretische Und Angewandte Genetik
|May 9, 2012
PubMed
Summary

Genomic selection (GS) uses molecular markers for breeding. Radial basis function neural networks (RBFNN) and reproducing kernel Hilbert spaces (RKHS) slightly outperform Bayesian LASSO for predicting traits, especially with complex genetic effects.

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Area of Science:

  • Genetics
  • Bioinformatics
  • Machine Learning

Background:

  • Genomic selection (GS) is crucial in modern animal and plant breeding.
  • High-density molecular markers enable advanced prediction models.
  • Various regression models are employed for quantitative trait prediction in GS.

Purpose of the Study:

  • To evaluate the predictive performance of radial basis function neural networks (RBFNN) and reproducing kernel Hilbert spaces (RKHS) regression compared to Bayesian LASSO.
  • To assess the utility of non-linear models for genomic prediction using dense molecular markers.
  • To investigate the impact of epistatic effects and redundant predictors on prediction accuracy.

Main Methods:

  • Comparison of three regression models: Bayesian LASSO, RKHS regression, and RBFNN.
  • Application to simulated data and real maize lines genotyped with 55,000 markers.
  • Evaluation across multiple trait-environment combinations.

Main Results:

  • All three models demonstrated comparable overall prediction accuracy.
  • RKHS and RBFNN showed a slight, consistent advantage over the additive Bayesian LASSO model.
  • RKHS and RBFNN models captured epistatic effects in simulated data.

Conclusions:

  • Non-linear models like RKHS and RBFNN offer slight improvements in genomic prediction accuracy over linear models.
  • While capable of capturing epistasis, non-linear models can be sensitive to the inclusion of redundant predictors, potentially reducing accuracy.