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I would like to get the 0.28 from the character using R "\n 0.28\n \n ".

Maybe I should use sub() function, but I am not sure how to do it.

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This is nearly a duplicate of these previous questions: stackoverflow.com/q/14543627/1036500 and stackoverflow.com/q/15451251/1036500 Some of the answers to those questions work here also, eg. as.numeric(gsub("[[:alpha:]]", "", string)) –  Ben May 5 '13 at 6:47

3 Answers 3

up vote 10 down vote accepted

In general, you want to learn about regular expressions. Which can be intimidating, but you can also learn by example.

Here, we can do something relatively simple:

R> txt <- "\n 0.28\n \n "
R> gsub(".* ([0-9.]+).*", "\\1", txt)
[1] "0.28"
R> as.numeric(gsub(".* ([0-9.]+).*", "\\1", txt))
[1] 0.28
R> 

The (...) marks something we "want", here we say we want digits or dots, and several of them (the +). The "\\1" then recalls that match.

Alternatively, we could just "erase" all of the \n and spaces:

R> as.numeric(gsub("[\n ]", "", txt))
[1] 0.28
R> 
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1  
Great response and well explained example. Regex needs more of this +1 –  Tyler Rinker May 5 '13 at 1:14

You don't need regular expressions for your use-case.

 string <-  "\n 0.28\n \n "
 as.numeric(string)
 [1] 0.28
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Nice one. Seems to break as soon as there is another digit somewhere but the presented example it does indeed work. –  Dirk Eddelbuettel May 5 '13 at 1:04
1  
@Dirk. Wouldn't you want it to break? Using for example txt <- " \n 1.5 \n 33 \n" your two solutions would give respectively 33 and 1.533. Not that your answer was bad. –  flodel May 5 '13 at 1:27

The solutions so far are great and actually teach you something. If you want the dumb but simple answer, taRifx::destring will work:

library(taRifx)
> destring("\n 0.28\n \n ")
[1] 0.28

It uses the [^...] regular expression idiom ("not") rather than back-referencing as in @Dirk's solution:

return(as.numeric(gsub(paste("[^", keep, "]+", sep = ""), "", x)))
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