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My task is to split and extract the part from a string until the occurrence of the fourth underscore. I am working with R right now but I am kind of a beginner with programming and stuff.

The input looks like this:

6_10_36_0_1
6_10_38_16_15
6_100_76_16_18.1

My required result would look like this:

6_10_36_0
6_10_38_16
6_100_76_16

My idea is the following:

substr(data$x, 0, XXX)

While XXX defines the position before the fourth underscore, maybe using grep or strsplit?

Sorry, if I asked a stupid and easy-to-answer question. However I didn't find a fitting to answers already posted.


edit:

> bestand$ID<-sub("(_[0-9.]+$)", "", bestand$x)
Fehler in `$<-.data.frame`(`*tmp*`, "ID", value = character(0)) : 
  replacement has 0 rows, data has 36513
> gsub("(_[0-9.]+$)", "", "6_100_63_8_2")
[1] "6_100_63_8"
>

apparently the command works, however it doesnot work with the matrix..

share|improve this question
1  
it looks like your bestand data frame doesn't actually have an x component? What is the result of names(bestand), or even better str(bestand) [if bestand doesn't have a huge number of rows]? – Ben Bolker Dec 20 '12 at 16:00
up vote 2 down vote accepted

The stringr package has lots of handy shortcuts for this kind of work:

# input data   
data <- read.table(text = "6_10_36_0_1
6_10_38_16_15
6_100_76_16_18.1")

# load library
library(stringr)

# prepare regular expression
regexp <- "([[:digit:]]+_){3}[[:digit:]]+"

# process string
(str_extract(data$V1, regexp))

Which gives the desired result:

[1] "6_10_36_0"   "6_10_38_16"  "6_100_76_16"

To explain the regexp a little:

[[:digit:]] is any number 0 to 9

+ means the preceding item (in this case, a digit) will be matched one or more times

_ is the underscore, as is

{3} means repeat the previous string three times

This page is also very useful for this kind of string processing: http://en.wikibooks.org/wiki/R_Programming/Text_Processing

share|improve this answer
1  
How about regexp <- "([[:digit:]]+_){3}[[:digit:]]+"? It seems to give the correct result and is at least slightly easier to type ... – Ben Bolker Dec 20 '12 at 21:59
    
Good idea! Thanks for the tip, I've edited accordingly. – Ben Dec 20 '12 at 22:02
1  
thanks for your solution! works fine for me! – user1918745 Dec 27 '12 at 10:57

You can use regular expression to replace with null, in php we do

$string = '6_10_36_0_1';
$newstring =preg_replace('/(_[0-9.]+$)/', '', $string);

Edit (I dono exactly about r but roughly it would be like this)

sub("(_[0-9.]+$)", "", 'your strings or array of strings')

gsub("(_[0-9.]+$)", "", 'your strings or array of strings')

and the tutorial is here

share|improve this answer
    
thanks for the answer! i tried to use your line in R but didnot succeed. Do you know the corresponding command in R? – user1918745 Dec 20 '12 at 13:01
    
for r i think sub() and gsub() @user1918745 – senK Dec 20 '12 at 13:07
    
thanks!! now we are getting somewhere :) see my edit – user1918745 Dec 20 '12 at 13:53

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