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Suppose I have a list of string: string = c("G1:E001", "G2:E002", G3:E003). Now I hope to get a vector of string that contains only the parts after the colon ":", i.e substring = c(E001,E002,E003). Is there a convenient way in R to do this? Using substr? Thanks!

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4 Answers 4

up vote 13 down vote accepted

Here are a few ways:

sub

> sub(".*:", "", string)
[1] "E001" "E002" "E003"

strsplit

> sapply(strsplit(string, ":"), "[", 2)
[1] "E001" "E002" "E003"

read.table

> read.table(text = string, sep = ":", as.is = TRUE)$V2
[1] "E001" "E002" "E003"

substring

This assumes second portion always starts at 4th character (which is the case in the example in the question):

> substring(string, 4)
[1] "E001" "E002" "E003"

strapplyc

strapplyc returns the parenthesized portion:

> library(gsubfn)
> strapplyc(string, ":(.*)", simplify = TRUE)
[1] "E001" "E002" "E003"

ADDED. strapplyc solution.

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For example using gsub or sub

    gsub('.*:(.*)','\\1',string)
    1] "E001" "E002" "E003"
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This should do:

gsub("[A-Z][1-9]:", "", string)

gives

[1] "E001" "E002" "E003"
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+1! still correct if you remove the g from gsub.. –  agstudy Jun 20 '13 at 14:25

Here is another simple answer

gsub("^.*:","", string)
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