6

I want to use a regex to extract all URLs from text in a dataframe, into a new column. I have some older code that I have used to extract keywords, so I'm looking to adapt the code for a regex. I want to save a regex as a string variable and apply here:

data$ContentURL <- apply(sapply(regex, grepl, data$Content, fixed=FALSE), 1, function(x) paste(selection[x], collapse=','))

It seems that fixed=FALSE should tell grepl that its a regular expression, but R doesn't like how I am trying to save the regex as:

regex <- "http.*?1-\\d+,\\d+"

My data is organized in a data frame like this:

data <- read.table(text='"Content"     "date"   
 1     "a house a home https://www.foo.com"     "12/31/2013"
 2     "cabin ideas https://www.example.com in the woods"     "5/4/2013"
 3     "motel is a hotel"   "1/4/2013"', header=TRUE)

And would hopefully look like:

                                           Content       date              ContentURL
1               a house a home https://www.foo.com 12/31/2013     https://www.foo.com
2 cabin ideas https://www.example.com in the woods   5/4/2013 https://www.example.com
3                                 motel is a hotel   1/4/2013                        
6
  • 1
    For R, the entire regex must go in a character variable. Where did you get the idea that \\< and \\> would be parsed? – joran Oct 21 '14 at 21:21
  • 1
    You are playing with fire if you use grep to regex on an html document – Rich Scriven Oct 21 '14 at 21:22
  • 2
    Perhaps, showing us the data and what you are trying to extract will also help out. – hwnd Oct 21 '14 at 21:23
  • All urls or a certain url? – hwnd Oct 21 '14 at 21:37
  • Sorry for the confusion! I want to extract all urls. – lmcshane Oct 21 '14 at 22:28
24

Hadleyverse solution (stringr package) with a decent URL pattern:

library(stringr)

url_pattern <- "http[s]?://(?:[a-zA-Z]|[0-9]|[$-_@.&+]|[!*\\(\\),]|(?:%[0-9a-fA-F][0-9a-fA-F]))+"

data$ContentURL <- str_extract(data$Content, url_pattern)

data

##                                            Content       date              ContentURL
## 1               a house a home https://www.foo.com 12/31/2013     https://www.foo.com
## 2 cabin ideas https://www.example.com in the woods   5/4/2013 https://www.example.com
## 3                                 motel is a hotel   1/4/2013                    <NA>

You can use str_extract_all if there are multiples in Content, but that will involve some extra processing on your end afterwards.

3

Here's one approach using the qdapRegex library:

library(qdapRegex)
data[["url"]] <- unlist(rm_url(data[["Content"]], extract=TRUE))
data

##                                            Content       date                     url
## 1               a house a home https://www.foo.com 12/31/2013     https://www.foo.com
## 2 cabin ideas https://www.example.com in the woods   5/4/2013 https://www.example.com
## 3                                 motel is a hotel   1/4/2013                    <NA>

To see the regular expression used by the function (as qdapRegex aims to help analyze and educate about regexs) you can use the grab function with the function name prefixed with @:

grab("@rm_url")

## [1] "(http[^ ]*)|(ftp[^ ]*)|(www\\.[^ ]*)"

grepl tells you a logical output of yes this string contains or no it does not. grep tells you the indexes or gives the values but values are the whole string nut the substring you want.

So to pass this regex along to base or the stringi package (qdapRegex wraps stingi for extraction) you could do:

regmatches(data[["Content"]], gregexpr(grab("@rm_url"), data[["Content"]], perl = TRUE))

library(stringi)
stri_extract(data[["Content"]], regex=grab("@rm_url"))

I'm sure there's a stringr approach too but am not familiar with the package.

0
0

Split on space then find "http":

data$ContentURL <- unlist(sapply(strsplit(as.character(data$Content), split = " "),
                                 function(i){
                                   x <- i[ grepl("http", i)]
                                   if(length(x) == 0) x <- NA
                                   x
                                 }))


data
#                                            Content       date              ContentURL
# 1               a house a home https://www.foo.com 12/31/2013     https://www.foo.com
# 2 cabin ideas https://www.example.com in the woods   5/4/2013 https://www.example.com
# 3                                 motel is a hotel   1/4/2013                    <NA>
0

You can use the package unglue :

library(unglue)
unglue_unnest(data,Content, "{=.*?}{url=http[^ ]*}{=.*?}",remove = FALSE)
#>                                            Content       date                       url
#> 1               a house a home https://www.f00.com 12/31/2013 1     https://www.f00.com
#> 2 cabin ideas https://www.example.com in the woods   5/4/2013 2 https://www.example.com
#> 3                                 motel is a hotel   1/4/2013 3                    <NA>
  • {=.*?} matches anything and is not assigned to an extracted column so the lhs of = is empty
  • {url=http[^ ]*} matches something that starts with http and is followed by non spaces, as the lhs is url it is extracted into url

Ps: I manually changed foo into f00 in my answer because of SO restrictions

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