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Let's say I have a vector of strings, like this:

vectorOfStrings <- c("Name: Andrew, College: Bradford",
                     "Name: Charlie Daniels, College: Easton College",
                     "Name: Frank Gehry, III, College: Highlands University")

where there is a clear repeating "Name: ", ", College: " pattern.

I would like to produce a list (or data.frame) that looks like this:

listOfValues <- list(c("Andrew", "Charlie Daniels", "Frank Gehry, III"),
                     c("Bradford", "Easton College", "Highlands University"))

What is the most straightforward way to get from vectorOfStrings to listOfValues? I am reasonably familiar with the base string manipulation functions, as well as with stringr, but I would imagine this is a relatively common situation, and am hoping that there is a relatively well-developed solution.

Thanks in advance.

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5 Answers 5

Here are two possible solutions:

(1) strapplyc The mat statement creates a matrix whose first column holds the names and whose second holds the colleges. Then we convert that to an unnamed list in the last statement:

library(gsubfn)

pat <- "Name: (.*), College: (.*)"
mat <- strapplyc(vectorOfStrings, pat, simplify = rbind)

unname(as.list(as.data.frame(mat, stringsAsFactors = FALSE)))

(2) gsub/read.table A variation using only plain R is to use gsub with pat from above to convert each input string to a pipe-separated string containing the data but not the tags. Reading that in with read.table gives a data frame, DF. Finally, we convert DF to an unnamed list:

g <- gsub(pat, "\\1|\\2", vectorOfStrings)
DF <- read.table(text = g, sep = "|", as.is = TRUE)

unname(as.list(DF))

ADDED: second solution

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I like mathematical coffee's idea, but since I've already got this written up, here's another possibility:

X <- strsplit(vectorOfStrings, ",\\s*(?=College:)", perl=TRUE)
do.call(rbind, lapply(X, function(X) gsub("(Name|College):\\s*", "", X)))
#      [,1]               [,2]                  
# [1,] "Andrew"           "Bradford"            
# [2,] "Charlie Daniels"  "Easton College"      
# [3,] "Frank Gehry, III" "Highlands University"
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  do.call(rbind, strsplit(unlist(
            strsplit(vectorOfStrings, "Name: ")), ", College: "))

       [,1]               [,2]                  
  [1,] "Andrew"           "Bradford"            
  [2,] "Charlie Daniels"  "Easton College"      
  [3,] "Frank Gehry, III" "Highlands University"


it seems there is lots of good answers already. Similar to @Josh O'Brien, I would use strsplit.

Since you are not keeping "Name" and "College", you can split right on it. Then you just wrapt that in a do.call(rbind, ___) which will automatically drop any empty strings created by the split.

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I do this sort of thing with regexp, using perl=T) (haven't found a nice way to extract captured groups otherwise):

m <- regexpr('^Name: *(.+), *College: (.+) *$',
             vectorOfStrings, perl=T)
# m looks like this:
# [1] 1 1 1
# attr(,"match.length")
# [1] 31 46 53
# attr(,"useBytes")
# [1] TRUE
# attr(,"capture.start")  # one column per capturing bracket,   
# [1,] 7 24               # one row per entry in vectorOfStrings
# [2,] 7 33
# [3,] 7 34
# attr(,"capture.length")    
# [1,]  6  8
# [2,] 15 14
# [3,] 16 20
# attr(,"capture.names")
# [1] "" ""

# laziness
st <- attr(m, 'capture.start')
en <- st + attr(m, 'capture.length') - 1
numCaptures <- ncol(st)

matches <- sapply(1:numCaptures, function (i) {
    return(substr(vectorOfStrings, st[, i], en[, i]))
})

# matches
#     [,1]               [,2]                  
# [1,] "Andrew"           "Bradford"            
# [2,] "Charlie Daniels"  "Easton College"      
# [3,] "Frank Gehry, III" "Highlands University"

Now massage matches into your desired form. I usually wrap this in a function as I use it fairly often.

You can even use Perl naming regex like so:

m <- regexpr('^Name: *(?<name>.+), *College: (?<college>.+) *$',
             vectorOfStrings, perl=T)

and then attr(m, 'capture.names') will be c('name', 'college') and colnames(attr(m, 'capture.(start or length)')) also be c('name', 'college').

Anyhow the key seems to be using perl=T, or else regexpr doesn't return a set of start/end points per capturing bracket.

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(alternatively, you could split on : and trim the values of preceding spaces or trailing commas and spaces, if you are certain that : will not appear internally in any of the names or colleges) –  mathematical.coffee Feb 26 '13 at 1:30

probably simpler to use backreferencing

> vectorOfStrings
[1] "Name: Andrew, College: Bradford"                       "Name: Charlie Daniels, College: Easton College"       
[3] "Name: Frank Gehry, III, College: Highlands University"
> list(gsub('^Name:(.*), College:(.*)$',"\\1", vectorOfStrings) , gsub('^Name:(.*), College:(.*)$',"\\2", vectorOfStrings))
[[1]]
[1] " Andrew"           " Charlie Daniels"  " Frank Gehry, III"

[[2]]
[1] " Bradford"             " Easton College"       " Highlands University"
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