An R package for fitting classification and regression trees.

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decision tree - customize plot title when using Rattle and rpart.plot

I created a decision tree using Rattle and the rpart.plot package. This package is supposed to make the output more "pretty" than the regular Rattle output. Here's what the output looks like. ...
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1answer
13 views

Problems with prediction in decision tree in caret package

I am having problems doing a prediction with decision trees (CART). I have this code: training <- read.csv("pml-training.csv", header=TRUE) set.seed(1972) inTrain <- ...
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2answers
38 views

To get the tuples which follow a particular rule in a decision tree in R

I am creating a decision tree using rpart in R. I can also print out the rules generated by the decision tree using the path.rpart() function. For the airquality data , i have the output of rules as ...
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55 views

Why is CART in R not using my factor variables? [migrated]

I have data which looks like data.frame': 29969 obs. of 12 variables: $ X : int 1 2 3 4 5 6 7 8 9 10 ... $ Productcode : int 102146 102146 102146 102146 102146 102146 ...
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24 views

CART with Ordinal Response Variable using rpartScore Stuck

I'm trying to fit a decision tree over some data which has ~40K rows and ~200 features. The response variable, y, is ordinal and takes values {1,2,3} or {1,2,3,4} depending on the problem definition. ...
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1answer
54 views

Color nodes in rpart tree

How does the box.col() colouring work for prp tree graphs? I would like to colour terminal nodes using three colours either based on any 3 age categories or based on any 3 groupings of node numbers ...
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1answer
16 views

Why do I get different cross validation errors with rpart if I specify parms with default values?

I am puzzled by the following: set.seed(144) df = data.frame(outcome=as.factor(sample(c('a','b','c'), 1000, replace=T)), x=rnorm(1000), y=rnorm(1000), z=rnorm(1000)) library(rpart) fit.default = ...
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1answer
31 views

pruning tree with caret library returns complex trees

I'm using the caret package for a tree model. I understood that caret uses CV to find the optimal tuning parameter for pruning the tree. This is the code I use: id2 <- ...
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130 views

Caret train method complains Something is wrong; all the RMSE metric values are missing

On numerous occasions I've been getting this error when trying to fit a gbm or rpart model. Finally I was able to reproduce it consistently using publicly available data. I have noticed that this ...
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1answer
64 views

How to do decision trees in R? [closed]

I usually do decissions trees in SPSS to get targets from a DDBB, I did a bit of research and found that there are three packages: tree, party and rpart that are available for R, but which is better ...
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1answer
22 views

rpart package median or geometric mean instead of mean

Is it possible to change the average estimator in a region by something different from the mean, like median or geometric mean using the rpart library in R? (or another library) I believe my tree ...
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139 views

Using rpart: How to get more variability on predictions?

I am using the rpart package like so: model <- rpart(totalUSD ~ ., data = df.train) I notice that over 80k rows, rpart is generalizing it's predictions into just three distinct groups as shown ...
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1answer
23 views

rpart rounding values

I'm trying to plot a model called "fit" that I created using the rpart package. My problem is that the number on the plot are being rounded. For example, if I run plot(fit) text(fit) I get the ...
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12 views

Why are the cp values in plotcp() chart modified from the original table?

What are the cp values on the rpart plotcp() chart? I would expect these values to match the cp column in printcp(), but instead the following scale is calculated (from the plotcp code): p.rpart ...
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1answer
54 views

Gibberish Output in RPart plot in R

I am trying to run a Decision Tree using RPart in R, on a data set with 26 variables to classify an outcome as 0 or 1. The model has a fair accuracy of 81% and when I go ahead and plot the tree, I get ...
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1answer
85 views

Error in confusionMatrix.default(data.testTree, testing$money.gain) : the data cannot have more levels than the reference

No, because when you run caret::confusionMatrix (data.testTree, testing $ money.gain) tells me this: the data can not have any more than the reference levels. I have run these commands: cvControl ...
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0answers
19 views

rpart user defined implementation

I'm trying to implement a "tree based method which uses cox model" method described in this article : ...
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93 views

R classification tree with Rpart

I have some data which I would like to segment. My first thought was classification tree in R from Rpart package. My training data consists of many explanatory variables and one 0-1 response variable ...
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1answer
59 views

An error occurs when calling rpart for a large data set

I have a large data set which has 100k data fields. When I try str() or view the full data no glitched occurs, but when I run rpart on the training set it takes sometime and after about 3-4 minutes it ...
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2answers
91 views

Saving decision tree's output into a text file

I'm looking for a method to save decision tree's output in R. Here is a simple decision tree code in R: library(rpart) data(kyphosis) fit <- rpart(Kyphosis ~ Age + Number + Start, data = kyphosis) ...
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1answer
50 views

How to return multiple objects of a library in R?

I'm using rpart library in R. In a function, I want to return an array of rpart objects which are generated in a for loop. However, I don't know which data structure I should use for storing rpart ...
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6 views

How to return multiple objects of a specific library in R?

I'm using rpart library in R. In a function, I want to return an array of rpart objects which are generated in a for loop. However, I don't know which data structure I should use for storing rpart ...
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34 views

How can I get a plot in rpart to use observed values rather than weights

I've successfully completed an analysis in rpart, where I have 0-1 outcome data, where I have weighted the data to deal with the problem of a scarce response. When I plot the data using prp, I want ...
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1answer
79 views

Using ordinal variables in rpart and caret without converting to dummy categorical variables

I am trying to create an ordinal regression tree in R using rpart, with the predictors mostly being ordinal data, stored as factor in R. When I created the tree using rpart, I get something like ...
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1answer
206 views

Using a survival tree from the 'rpart' package in R to predict new observations

I'm attempting to use the "rpart" package in R to build a survival tree, and I'm hoping to use this tree to then make predictions for other observations. I know there have been a lot of SO questions ...
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68 views

r caret predict returns fewer output than input

I used caret to train an rpart model below. trainIndex <- createDataPartition(d$Happiness, p=.8, list=FALSE) dtrain <- d[trainIndex, ] dtest <- d[-trainIndex, ] fitControl <- ...
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25 views

Is there a cutoff(vote ratio) function for rpart?

I am aware there is a 'cutoff' function which takes in a vector of k length for k classes it sets the threshold of a proportion of sufficient vote to group the classification as a positive class for ...
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49 views

R rpart model has zero splits after using caret's train

I am using rpart to get a classification model for my data but I do not know how to allocate the bucket size so as to avoid getting an overfitted or underfitted model. To get the optimal bucket size, ...
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2answers
56 views

Caret and rpart - definining method

i am trying to familiarize myself with the caret package. I would previously use rpart directly - e.g. with the following syntax fit_rpart=rpart(y~.,data=dt1,method="anova"). i have specified ...
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44 views

In rpart how do I make the split?

I want to divide the nodes into two parts: Success and Failure. fit <- rpart(good_perf ~ bad_perf + marks ,method="class",data=inputfile, control=rpart.control(minsplit=2)) It ...
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61 views

How to set threshold of class counter / probability to label “predicted class” in R rpart

I am using rpart function to get a decision tree to predict Owner / No-owner based on a set of variables .Below is the excerpt of output Node number 2: 8 observations, complexity param=0.08333333 ...
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3answers
68 views

Running rpart over multiple subsets of a data frame

I'm creating a decision tree with the R rpart package based on x number of variables and a dataframe: fit<-rpart(y~x1+x2+x3+x4+xN....,data=(mydataframe), control=rpart.control(minsplit = 20, ...
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53 views

How the 'rpart' function does cross validation?

I'm kind of a new R user and i'm trying to use rpart to create a decision tree for me over some data. I then use a plot function (FancyPlot) to plot the tree it made. Each node contains several ...
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1answer
66 views

not creating tree by rpart in R

I'm new to R and rpart package. I want to create a tree using the following sample data. My data set is similar to this mydata = "","A","B","C","status" "1",TRUE,TRUE,TRUE,"okay" ...
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1answer
101 views

How can I extract decisions from a tree object of the R package rpart?

I use the package rpartto model a classification/regression tree. I have the variables x,y,s where x is in {-1,1}, y is continuous in [0,1] and s$is a factor with 3 levels. I use fit <- ...
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1answer
108 views

R ctree strange error

I have some strange problem in for loops with ctree data. If I write this code in a loop then R freezes. data = read.csv("train.csv") #data description ...
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1answer
141 views

Understanding of minbucket function in CART model using R

Assume the training data is "fruit", which I am going to use it for predict using CART model in R > fruit=data.frame( color=c("red", "red", "red", "yellow", "red","yellow", ...
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1answer
176 views

Get decision tree rule/path pattern for every row of predicted dataset for rpart/ctree package in R

I have built a decision tree model in R using rpart and ctree. I also have predicted a new dataset using the built model and got predicted probabilities and classes. However, I would like to extract ...
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1answer
251 views

Data Prediction using Decision Tree of rpart

I am using R to classify a data-frame called 'd' containing data structured like below: The data has 576666 rows and the column "classLabel" has a factor of 3 levels: ONE, TWO, THREE. I am ...
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1answer
46 views

How to find the the deviance of an as.party object converted from rpart tree in R?

I created a tree in R. rp <- rpart(Kyphosis ~ Age + Number + Start, data = kyphosis) ## coerce to `constparty' rp.party <- as.party(rp) Now, I want to find the deviance of the rp.party ...
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1answer
76 views

Getting back original names from rpart.object

I have saved models which were created using the rpart package in R. I am trying to retrieve some information from these saved models; specifically from rpart.object. While the documentation - rpart ...
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83 views

how do I get rpart to work with increased number of factors?

I observe that just for the rpart package (for decision tree models), as I increase the number of factor levels in my data, the package slows down drastically. I have compared with other packages, and ...
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1answer
51 views

The meaning of predict(rpart.model)

Given that: data(iris) fit <- rpart(Species~., iris) predict(fit) Does this give a cross-validated prediction of the training data? I did not find any confirmation for a CV prediction in the ...
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2answers
92 views

How to get terminal nodes for a new observation from an rpart object?

Say I have head(kyphosis) inTrain <- sample(1:nrow(kyphosis), 45, replace = F) TRAIN_KYPHOSIS <- kyphosis[inTrain,] TEST_KYPHOSIS <- kyphosis[-inTrain,] (kyph_tree <- rpart(Number ~ ., ...
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1answer
38 views

Minbucket and weights in rpart

A couple questions for the rpart and party experts. 1) I am trying to understand the difference of the control parameter "minbucket" in rpart and party. Is it correct that minbucket in rpart is ...
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1answer
86 views

Combining DF and rpart$where?

If I do DF$where <- tree$where after fitting an rpart object using DF as my data, will each row be mapped to its corresponding leaf through the column where? Thanks!
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1answer
202 views

Prediction using rpart on new factor (categorical) variables

I am practising machine learning using R. I am using rpart method for the training. The data is the adult data set from the UCI. Link as follows http://archive.ics.uci.edu/ml/datasets/Adult #Get the ...
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1answer
379 views

What is the difference between rel error and x error in a rpart decision tree?

I have a purely categorical dataframe from the UCI machine learning database https://archive.ics.uci.edu/ml/datasets/Diabetes+130-US+hospitals+for+years+1999-2008 I am using rpart to form a decision ...
3
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1answer
164 views

Why do results using caret::train(…, method = “rpart”) differ from rpart::rpart(…)?

I'm taking part in the Coursera Practical Machine Learning course, and the coursework requires building predictive models using this dataset. After splitting the data into training and testing ...
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1answer
86 views

How to plot levels rather than labels / indices for factor variables rpart using text?

Plotting a tree split on a factor variable results in a plot where the node is labeled with an index of the factor rather than the text of the level. How do I plot a tree where the label is the actual ...