Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

The dataset structure is:

> str(trainData)
'data.frame':   891 obs. of  13 variables:
 $ PassengerId: int  1 2 3 4 5 6 7 8 9 10 ...
 $ Survived   : Factor w/ 2 levels "No","Yes": 1 2 2 2 1 1 1 1 2 2 ...
 $ Pclass     : Factor w/ 3 levels "1st","2nd","3rd": 3 1 3 1 3 3 1 3 3 2 ...
 $ Name       : chr  "Braund, Mr. Owen Harris" "Cumings, Mrs. John Bradley (Florence Briggs Thayer)" "Heikkinen, Miss. Laina" "Futrelle, Mrs. Jacques Heath (Lily May Peel)" ...
 $ Sex        : Factor w/ 2 levels "Male","Female": 1 2 2 2 1 1 1 1 2 2 ...
 $ Age        : num  22 38 26 35 35 NA 54 2 27 14 ...
 $ SibSp      : int  1 1 0 1 0 0 0 3 0 1 ...
 $ Parch      : int  0 0 0 0 0 0 0 1 2 0 ...
 $ Ticket     : int  NA NA NA 113803 373450 330877 17463 349909 347742 237736 ...
 $ Fare       : num  7.25 71.28 7.92 53.1 8.05 ...
 $ Cabin      : chr  "" "C85" "" "C123" ...
 $ Embarked   : chr  "S" "C" "S" "S" ...
 $ Area       : Factor w/ 9 levels "","A","B","C",..: 1 4 1 4 1 1 6 1 1 1 ...

I want to create a new column in the data frame to store the form of address contained in the Name variable. To do so, I need to extract the strings "Mr", "Mrs", etc.. and store them in a new vector. I thought to address the problem in the following way.

vec <- vector()

for (i in 1 : nrow(trainData)) {
  if (grep("Mr\\.", trainData[i, "Name"]) == 1) {vec[i] <- "Mr"}
  else if (grep("Miss\\.", trainData[i, "Name"]) == 1) {vec[i] <- "Miss"}
  else if (grep("Mrs\\.", trainData[i, "Name"]) == 1) {vec[i] <- "Mrs"}
  else if (grep("Don\\.", trainData[i, "Name"]) == 1) {vec[i] <- "Don"}
  else if (grep("Master\\.", trainData[i, "Name"]) == 1) {vec[i] <- "Master"}
  else {vec[i] <- "Boh"}
}

.. and after that use the cbind function to bind the existent data frame with the new column FormOfAddress. I didn't test the next two lines of code, because I get an error message from the previous chunk.

trainData <- as.data.frame(cbind(trainData, vec))
names(trainData)[length(trainData)] <- "FormOfAddress"

Basically I got stuck at this point..

> vec <- vector()
> for (i in 1 : nrow(trainData)) {
+ if (grep("Mr\\.", trainData[i, c("Name")]) == 1) {vec[i] <- "Mr"}
+ else if (grep("Miss\\.", trainData[i, c("Name")]) == 1) {vec[i] <- "Miss"}
+ else if (grep("Mrs\\.", trainData[i, c("Name")]) == 1) {vec[i] <- "Mrs"}
+ else if (grep("Don\\.", trainData[i, c("Name")]) == 1) {vec[i] <- "Don"}
+ else if (grep("Master\\.", trainData[i, c("Name")]) == 1) {vec[i] <- "Master"}
+ else {vec[i] <- "Boh"; next}
+ }
Error in if (grep("Mr\\.", trainData[i, c("Name")]) == 1) { : 
  argument is of length zero

The first part of the if statement looks right to me. When the string Mr. is contained in the Name, it returns TRUE. Also the second part looks fine (at least on the first loop) and write the string Mr on the vector vec. The problem is on the second loop I think, but I cannot find a way to make it work.

share|improve this question
3  
You want grepl if you want to return a logical. grep returns the indices of matches, so if there's no match the result of grep will be a length 0 vector. Look at ?gsub for an easier way to do this without a for loop –  Jake Burkhead Jan 26 '14 at 22:45
    
Thank you Jake, grepl works fine. I will have a look at gsub tomorrow to see how to address the issue without using a for loop statement. –  Gianluca Jan 26 '14 at 23:04
    
I added an answer with a gsub solution. Hopefully that helps –  Jake Burkhead Jan 26 '14 at 23:13

1 Answer 1

trainData$Name

## [1] "Braund, Mr. Owen Harris"                            
## [2] "Cumings, Mrs. John Bradley (Florence Briggs Thayer)"
## [3] "Heikkinen, Miss. Laina"                             
## [4] "Futrelle, Mrs. Jacques Heath (Lily May Peel)"       
## [5] "tt"                                                 
## [6] "Mr. Jones"                                          

for (x in trainData$Name) {
    print(grep("Mr\\.", x))
    print(grepl("Mr\\.", x));
}

## [1] 1
## [1] TRUE
## integer(0)
## [1] FALSE
## integer(0)
## [1] FALSE
## integer(0)
## [1] FALSE
## integer(0)
## [1] FALSE
## [1] 1
## [1] TRUE

## Doing it without a loop.
## You might have to come up with a different
## regex here depending on the rest of your data
vec <- gsub("^([^,]+, )?([^.]+).*", "\\2", trainData$Name)
## [1] "Mr"   "Mrs"  "Miss" "Mrs"  "tt"   "Mr"  
vec <- ifelse(vec == trainData$Name, "Boh", vec)
## [1] "Mr"   "Mrs"  "Miss" "Mrs"  "Boh"  "Mr"  
share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.