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I am trying to create a new variable within data table under if statement: if string variable contains substring, then new variable equals to numerical value.

My data:

N X
1 aa1aa 
2 bb2bb
3 cc-1bb 
...

Dataframe contains several thousands of rows.

Result needed is new column containing numerical value which is withing string (X collumn):

N X      Y
1 aa1aa  1
2 bb2bb  2
3 cc-1bb -1 

I was trying with

for (i in 1:length(mydata)){
  if (grep('1', mydata$X) == TRUE) {
    mydata$Y <- 1  }

but I'm not sure if I'm even on correct way... Any help please?

share|improve this question
    
mydata$Y <- as.integer( grepl( "1" , mydata$X ) ). However if it doesn't include the string "1" what should the value for mydata$Y take? –  Simon O'Hanlon May 9 '14 at 11:17

3 Answers 3

up vote 0 down vote accepted

This should work on more of your extended samples. Basically it takes out everything that's not a letter from the middle of the string.

X <- c("aa1aa", "bb2bb", "cc-1bb","aa+0.5b","fg-0.25h")
gsub("^[a-z]+([^a-z]*)[a-z]+$","\\1",X,perl=T)
#[1] "1"     "2"     "-1"    "+0.5"  "-0.25"
share|improve this answer
    
This works great with example dataset. But when i run this with original dataset result is just the same value from X collumn :( any ideas? for example X value is "Greuther Furth [-0.25]" i need -0.25 as a result but i get the same "Greuther Furth [-0.25]".. Is it because im working with dataframe with 16 collumns? Im new to R.. this was so easy with SAS :/ –  Residium May 9 '14 at 13:20
    
Basecaly variable X is string containing numbers -0.5, -0.25, 0, +0.25, +0.5. Most complicated variable would be for example "Xyz 07 [+0.25]" i need to get numerical 0.25 into my new value Y. –  Residium May 9 '14 at 13:27
    
Well, regular expressions are very specific so when creating one you really need to know what the data looks like exactly. If those are the only values you are trying to find, how about gsub(".*?(-0.5|-0.25|0|\\+0.25|\\+0.5).*","\\1",X,perl=T) –  MrFlick May 9 '14 at 14:00

Using the example data from @Paulo you can use gsub from base R...

d$Y <- gsub( "[^0-9]" , "" , d$X ) 
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1  
thank you very much! Maby you know how to make this work if i need to extract numerical value from string which is for example aa+0.5b or fg-0.25h ? –  Residium May 9 '14 at 12:58

something like this?

d <- data.frame(N = 1:3,
                X = c('aa1aa', 'bb2bb', 'cc-1bb'),
                stringsAsFactors = FALSE)

library(stringr)

d$Y <- as.numeric(str_extract_all(d$X,"\\(?[0-9,.]+\\)?"))

d

  N      X  Y
1 1  aa1aa  1
2 2  bb2bb  2
3 3 cc-1bb  1

EDIT - Speed test

The gsub approch provided by @Simon is much faster than stringr

library(microbenchmark)
# 30000 lines data.frame
d1 <- data.frame(N = 1:30000,
                X = rep(c('aa1aa', 'bb2bb', 'cc-1bb'), 10000),
                stringsAsFactors = FALSE)

stringr

microbenchmark(as.numeric(str_extract_all(d1$X,"\\(?[0-9,.]+\\)?")), 
               times = 10L)
Unit: seconds
                                                      expr      min      lq  median       uq      max neval
 as.numeric(str_extract_all(d1$X, "\\\\(?[0-9,.]+\\\\)?")) 2.677408 2.75283 2.76473 2.781083 2.796648    10

base gsub

microbenchmark(gsub( "[^0-9]" , "" , d1$X ), times = 10L)
Unit: milliseconds
                     expr      min       lq   median       uq      max neval
 gsub("[^0-9]", "", d1$X) 44.95564 45.05358 45.07238 45.10201 45.23645    10
share|improve this answer
    
You should measure performance on a large data.frame. –  ziggystar May 9 '14 at 11:41

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