Difference between revisions of "Página de pruebas"
Adelo Vieira (talk | contribs) (Tag: Visual edit) |
Adelo Vieira (talk | contribs) (Tag: Visual edit) |
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{| class="wikitable" | {| class="wikitable" | ||
|+ | |+ | ||
| − | !Algorithms | + | ! rowspan="2" |Algorithms |
| − | !Author | + | ! rowspan="2" |Author |
| − | !From package | + | ! rowspan="2" |From package |
| − | !Keyword | + | ! rowspan="2" |Keyword |
| − | ! | + | ! colspan="2" |Accuracy |
| − | + | |- | |
| + | |Fake news dataset | ||
| + | |Fake news challenge dataset | ||
| + | |- | ||
| + | |General linearized models | ||
| + | |Friedman et al., 2010 | ||
| + | |[https://cran.r-project.org/web/packages/glmnet/index.html glmnet] | ||
| + | |GLMNET* | ||
| + | | | ||
| + | | | ||
|- | |- | ||
|Support vector machine | |Support vector machine | ||
|Meyer et al., 2012 | |Meyer et al., 2012 | ||
|[https://cran.r-project.org/web/packages/e1071/index.html e1071] | |[https://cran.r-project.org/web/packages/e1071/index.html e1071] | ||
| − | |SVM | + | |SVM* |
| − | |||
| | | | ||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| | | | ||
|- | |- | ||
| Line 35: | Line 37: | ||
|Jurka, 2012 | |Jurka, 2012 | ||
|[https://cran.r-project.org/web/packages/maxent/index.html maxent] | |[https://cran.r-project.org/web/packages/maxent/index.html maxent] | ||
| − | |MAXENT | + | |MAXENT* |
| − | | | + | | |
| | | | ||
|- | |- | ||
| − | | | + | |Classification or regression tree |
| − | | | + | |Ripley., 2012 |
| − | |[https://cran.r-project.org/web/packages/ | + | |[https://cran.r-project.org/web/packages/tree/index.html tree] |
| − | | | + | |TREE |
| | | | ||
| | | | ||
|- | |- | ||
| − | | | + | |Random forest |
| − | | | + | |Liawand Wiener, 2002 |
| − | |[https://cran.r-project.org/web/packages/ | + | |[https://cran.r-project.org/web/packages/randomForest/index.html randomForest] |
| − | | | + | |RF |
| | | | ||
| | | | ||
| Line 57: | Line 59: | ||
|[https://cran.r-project.org/web/packages/caTools/index.html caTools] | |[https://cran.r-project.org/web/packages/caTools/index.html caTools] | ||
|BOOSTING | |BOOSTING | ||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
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| Line 74: | Line 69: | ||
| | | | ||
|- | |- | ||
| − | | | + | |Bagging |
| − | | | + | |Peters and Hothorn, 2012 |
| − | |[https://cran.r-project.org/web/packages/ | + | |[https://cran.r-project.org/web/packages/ipred/index.html ipred] |
| − | | | + | |BAGGING** |
| + | | | ||
| + | | | ||
| + | |- | ||
| + | |Scaled linear discriminant analysis | ||
| + | |Peters and Hothorn, 2012 | ||
| + | |[https://cran.r-project.org/web/packages/ipred/index.html ipred] | ||
| + | |SLDA** | ||
| | | | ||
| | | | ||
| + | |- | ||
| + | | colspan="6" |* Low-memory algorithm | ||
| + | <nowiki>**</nowiki> Very high-memory algorithm | ||
|} | |} | ||
| + | |||
| + | |||
GLMNET <- train_model(container,"GLMNET") | GLMNET <- train_model(container,"GLMNET") | ||
| + | |||
| + | <br /> | ||
Revision as of 00:47, 7 April 2019
RTextTools - A Supervised LearningPackage for Text Classification
https://cran.r-project.org/web/packages/RTextTools/index.html
The train_model() function takes each algorithm, one by one, to produce an object passable to classify_model().
A convenience train_models() function trains all models at once by passing in a vector of model requests. The syntax below demonstrates model creation for all nine algorithms:
| Algorithms | Author | From package | Keyword | Accuracy | |
|---|---|---|---|---|---|
| Fake news dataset | Fake news challenge dataset | ||||
| General linearized models | Friedman et al., 2010 | glmnet | GLMNET* | ||
| Support vector machine | Meyer et al., 2012 | e1071 | SVM* | ||
| Maximum entropy | Jurka, 2012 | maxent | MAXENT* | ||
| Classification or regression tree | Ripley., 2012 | tree | TREE | ||
| Random forest | Liawand Wiener, 2002 | randomForest | RF | ||
| Boosting | Tuszynski, 2012 | caTools | BOOSTING | ||
| Neural networks | Venables and Ripley, 2002 | nnet | NNET | ||
| Bagging | Peters and Hothorn, 2012 | ipred | BAGGING** | ||
| Scaled linear discriminant analysis | Peters and Hothorn, 2012 | ipred | SLDA** | ||
| * Low-memory algorithm
** Very high-memory algorithm | |||||
GLMNET <- train_model(container,"GLMNET")