Difference between revisions of "Classification analysis advanced (analysis)"

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* '''Response name''' – Select response name
 
* '''Response name''' – Select response name
 
* '''Path to folder with saved model''' – Path to folder with saved model
 
* '''Path to folder with saved model''' – Path to folder with saved model
* '''Percentage of data for training''' – Proportion (in %) of data for training
 
 
* '''Parameters for LDA-classification''' – Parameters for LDA-classification
 
* '''Parameters for LDA-classification''' – Parameters for LDA-classification
 
** '''Max number of rotations''' – Maximal number of rotations for calculation of inverse matrix or eigen vectors
 
** '''Max number of rotations''' – Maximal number of rotations for calculation of inverse matrix or eigen vectors
 
** '''Epsilon for rotations''' – Epsilon for calculation of inverse matrix or eigen vectors
 
** '''Epsilon for rotations''' – Epsilon for calculation of inverse matrix or eigen vectors
 
** '''Max number of iterations''' – Max number of iterations in Lyusternikm method for calculation of maximal eigen value and corresponding eigen vector
 
** '''Max number of iterations''' – Max number of iterations in Lyusternikm method for calculation of maximal eigen value and corresponding eigen vector
** '''Epsilon for inerations in Lyusternik method''' – Epsilon for inerations in Lyusternik method
+
** '''Epsilon for iterations in Lyusternik method''' – Epsilon for iterations in Lyusternik method
 
* '''Parameters for maximum likelihood classification''' – Please, determine parameters for maximum likelihood classification based on multinormal distribution
 
* '''Parameters for maximum likelihood classification''' – Please, determine parameters for maximum likelihood classification based on multinormal distribution
 
** '''Max number of rotations''' – Maximal number of rotations for calculation of inverse matrix or eigen vectors
 
** '''Max number of rotations''' – Maximal number of rotations for calculation of inverse matrix or eigen vectors
Line 32: Line 31:
 
** '''Max number of iterations''' – Max number of iterations
 
** '''Max number of iterations''' – Max number of iterations
 
** '''Admissible misclassification rate''' – Admissible misclassification rate
 
** '''Admissible misclassification rate''' – Admissible misclassification rate
 +
* '''Parameters for logistic regression''' – Please, determine parameters for logistic regression
 +
** '''Max number of iterations''' – Max number of iterations
 +
** '''Admissible misclassification rate''' – Admissible misclassification rate
 +
** '''Max number of rotations''' – Maximal number of rotations for calculation of inverse matrix or eigen vectors
 +
** '''Epsilon for rotations''' – Epsilon for calculation of inverse matrix or eigen vectors
 +
* '''Parameters for cross-validation''' – Please, determine parameters for cross-validation
 +
** '''Percentage of data for training''' – Proportion (in %) of data for training
 +
* '''Parameters for variable selection''' – Parameters for variable selection
 +
** '''Number of selected variables''' – Number of selected variables
 +
** '''Variable selection type''' – Please, determine variable selection type
 
* '''Path to output folder''' – Path to output folder
 
* '''Path to output folder''' – Path to output folder
  

Latest revision as of 18:15, 9 December 2020

Analysis title
Default-analysis-icon.png Classification analysis advanced
Provider
Institute of Systems Biology
Class
ClassificationAnalysisAdvanced
Plugin
biouml.plugins.machinelearning (Machine learning)

[edit] Description

Create and save classification model or load classification model for prediction of response or cross-validation of classification model.

[edit] Parameters:

  • Classification mode – Select classification mode
  • Classification type – Select classification type
  • Path to data matrix – Path to table or file with data matrix
  • Variable names – Select variable names
  • Response name – Select response name
  • Path to folder with saved model – Path to folder with saved model
  • Parameters for LDA-classification – Parameters for LDA-classification
    • Max number of rotations – Maximal number of rotations for calculation of inverse matrix or eigen vectors
    • Epsilon for rotations – Epsilon for calculation of inverse matrix or eigen vectors
    • Max number of iterations – Max number of iterations in Lyusternikm method for calculation of maximal eigen value and corresponding eigen vector
    • Epsilon for iterations in Lyusternik method – Epsilon for iterations in Lyusternik method
  • Parameters for maximum likelihood classification – Please, determine parameters for maximum likelihood classification based on multinormal distribution
    • Max number of rotations – Maximal number of rotations for calculation of inverse matrix or eigen vectors
    • Epsilon for rotations – Epsilon for calculation of inverse matrix or eigen vectors
  • Parameters for perceptron classification – Please, determine parameters for perceptron classification
    • Optimization type – Select optimization type
    • Max number of iterations – Max number of iterations
    • Admissible misclassification rate – Admissible misclassification rate
  • Parameters for logistic regression – Please, determine parameters for logistic regression
    • Max number of iterations – Max number of iterations
    • Admissible misclassification rate – Admissible misclassification rate
    • Max number of rotations – Maximal number of rotations for calculation of inverse matrix or eigen vectors
    • Epsilon for rotations – Epsilon for calculation of inverse matrix or eigen vectors
  • Parameters for cross-validation – Please, determine parameters for cross-validation
    • Percentage of data for training – Proportion (in %) of data for training
  • Parameters for variable selection – Parameters for variable selection
    • Number of selected variables – Number of selected variables
    • Variable selection type – Please, determine variable selection type
  • Path to output folder – Path to output folder
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