15

I have some text where people use capitals with spaces in between to make the substring standout. I want to replace the spaces between these substrings. The rules for the pattern is: "at least 3 consecutive capital letters with a space between each letter".

I'm curious how to do this with pure regex but also with the gsubfn package as I thought this would be an easy job for it but in MWE example below I crashed and burned as an extra letter was placed in there (I'm curious why this is happening).

MWE

x <- c(
    'Welcome to A I: the best W O R L D!',
    'Hi I R is the B O M B for sure: we A G R E E indeed.'
)

## first to show I have the right regex pattern
gsub('(([A-Z]\\s+){2,}[A-Z])', '<FOO>', x)
## [1] "Welcome to A I: the best <FOO>!"               
## [2] "Hi I R is the <FOO> for sure: we <FOO> indeed."

library(gsubfn)
spacrm1 <- function(string) {gsub('\\s+', '', string)}
gsubfn('(([A-Z]\\s+){2,}[A-Z])', spacrm1, x)
## Error in (function (string)  : unused argument ("L ")
## "Would love to understand why this error is happening"

spacrm2 <- function(...) {gsub('\\s+', '', paste(..., collapse = ''))}
gsubfn('(([A-Z]\\s+){2,}[A-Z])', spacrm2, x)
## [1] "Welcome to A I: the best WORLDL!"               
## [2] "Hi I R is the BOMBM for sure: we AGREEE indeed."
## "Would love to understand why the extra letter is happening"

Desired Output

[1] "Welcome to A I: the best WORLD!"                 
[2] "Hi I R is the BOMB for sure: we AGREE indeed."
  • 1
    The regex has two capture groups but the function in the first gsubfn call only has one argument. It should have one argument for each capture group, i.e. two arguments. Try this to see what it is passing: gsubfn('(([A-Z]\\s+){2,}[A-Z])', ~ print(list(...)), x) – G. Grothendieck Nov 22 '17 at 13:53
  • Yeah, it looks like the mismatch in the number of arguments. If you use spacrm2 with gsubfn('((?:[A-Z]\\s+){2,}[A-Z])', spacrm2, x) the result is as expected. – Wiktor Stribiżew Nov 22 '17 at 13:54
  • @WiktorStribiżew can you give as an answer – Tyler Rinker Nov 22 '17 at 13:58
  • 1
    Ah, I recalled at last: to be able to pass the whole match, you need to pass the backref=0 argument. – Wiktor Stribiżew Nov 22 '17 at 14:01
  • ideone.com/dx1ZGJ – SamWhan Nov 23 '17 at 7:23
8

As I pointed out in the comments the problem in the first gsubfn call in the question arises from there being two capture groups in the regex yet only one argument to the function. These need to match -- two capture groups implies a need for two arguments. We can see what gsubfn is passing by running this and viewing the print statement's output:

junk <- gsubfn('(([A-Z]\\s+){2,}[A-Z])', ~ print(list(...)), x)

We can address this in any of the following ways:

1) This uses the regex from the question but uses a function that accepts multiple arguments. Only the first argument is actually used in the function.

gsubfn('(([A-Z]\\s+){2,}[A-Z])', ~ gsub("\\s+", "", ..1), x)
## [1] "Welcome to A I: the best WORLD!"              
## [2] "Hi I R is the BOMB for sure: we AGREE indeed."

Note that it interprets the formula as the function:

function (...) gsub("\\s+", "", ..1)

We can view the function generated from the formula like this:

fn$identity( ~ gsub("\\s+", "", ..1) )
## function (...) 
## gsub("\\s+", "", ..1)

2) This uses the regex from the question and also the function from the question but adds the backref = -1 argument which tells it to pass only the first capture group to the function -- the minus means do not pass the entire match either.

gsubfn('(([A-Z]\\s+){2,}[A-Z])', spacrm1, x, backref = -1)

(As @Wiktor Stribiżew points out in his answer backref=0 would also work.)

3) Another way to express this using the regex from the question is:

gsubfn('(([A-Z]\\s+){2,}[A-Z])', x + y ~ gsub("\\s+", "", x), x)

Note that it interprets the formula as this function:

function(x, y) gsub("\\s+", "", x)
  • All great answers...this was the first answer for the check – Tyler Rinker Nov 27 '17 at 15:29
8

Brief

There is a way in R to do this using regex entirely, but it's not pretty (although I think it looks pretty sweet!) This answer is also customizable to whatever your needs are (two uppercase minimum, three minimum, etc.) - i.e. scalable - and can match more than one horizontal whitespace characters (doesn't use lookbehinds, which require a fixed width).


Code

See regex in use here

(?:(?=\b(?:\p{Lu}\h+){2}\p{Lu})|\G(?!\A))\p{Lu}\K\h+(?=\p{Lu})

Replacement: Empty string

Edit

I just realized I used \b here, which may not work with Unicode characters (such as É). The following alternative is likely a better approach. It checks to ensure what precedes the first uppercase character is not a letter (from any language/script). It also ensures that it doesn't match an uppercase character at the end of the uppercase series if it is followed by any other letter.

If you also need to ensure numbers don't precede uppercase letters, you can use [^\p{L}\p{N}] in the place of \P{L}.

See regex in use here

(?:(?<=\P{L})(?=(?:\p{Lu}\h+){2}\p{Lu})|\G(?!\A))\p{Lu}\K\h+(?=\p{Lu}(?!\p{L}))

Usage

See code in use here

x <- c(
    "Welcome to A I: the best W O R L D!",
    "Hi I R is the B O M B for sure: we A G R E E indeed."
)
gsub("(?:(?=\\b(?:\\p{Lu}\\h+){2}\\p{Lu})|\\G(?!\\A))\\p{Lu}\\K\\h+(?=\\p{Lu})", "", x, perl=TRUE)

Results

Input

Welcome to A I: the best W O R L D!
Hi I R is the B O M B for sure: we A G R E E indeed.

Output

Welcome to A I: the best WORLD!
Hi I R is the BOMB for sure: we AGREE indeed.

Explanation

  • (?:(?=(?:\b\p{Lu}\h+){2}\p{Lu})|\G(?!\A)) Match either of the following
    • (?=\b(?:\p{Lu}\h+){2}\p{Lu}) Positive lookahead ensuring what follows matches (used as an assertion in this case to find all locations in the string that are in the format A A A). You can also add \b at the end of this positive lookahead to ensure something like I A Name doesn't get matched
      • \b Assert position at a word boundary
      • (?:\p{Lu}\h+){2} Match the following exactly twice
        • \p{Lu} Match an uppercase character in any language (Unicode)
        • \h+ Match one or more horizontal whitespace characters
      • \p{Lu} Match an uppercase character in any language (Unicode)
    • \G(?!\A) Assert position at the end of the previous match
  • \p{Lu} Match an uppercase character in any language (Unicode)
  • \K Resets the starting point of the reported match. Any previously consumed characters are no longer included in the final match
  • \h+ Match one or more horizontal whitespace characters
  • (?=\p{Lu}) Positive lookahead ensuring what follows is an uppercase character in any language (Unicode)
  • Amazing...wouldn't have come to this on my own. Great learning here. – Tyler Rinker Nov 22 '17 at 16:35
5

The problem here is what items are passed to the spacrm functions by gsubfn and the mismatch in the number of arguments spacrm function accept and the number of arguments passed to them.

See the gsubfn docs about backref argument:

Number of backreferences to be passed to function. If zero or positive the match is passed as the first argument to the replacement function followed by the indicated number of backreferences as subsequent arguments. If negative then only the that number of backreferences are passed but the match itself is not. If omitted it will be determined automatically, i.e. it will be 0 if there are no backreferences and otherwise it will equal negative the number of back references. It determines this by counting the number of non-escaped left parentheses in the pattern.

So, in your case, the backref argument was omitted, and the spacrmX functions got W O R L D and L values.

The spacrm1 function that only accepts a single argument got two arguments, hence the unused argument ("L ") error.

When spacrm2 was used, it got all two captured values, and they got concatenated (after whitespace removal).

You may actually just use backref=0 to tell the gsubfn to only handle the whole match value and simplify the pattern, remove capturing groups and use one non-capturing instead:

spacrm1 <- function(string) {gsub('\\s+', '', string)}
x <- c(
     'Welcome to A I: the best W O R L D!',
     'Hi I R is the B O M B for sure: we A G R E E indeed.'
)
gsubfn('(?:[A-Z]\\s+){2,}[A-Z]', spacrm2, x, backref=0)
[1] "Welcome to A I: the best WORLD!"              
[2] "Hi I R is the BOMB for sure: we AGREE indeed."
1

You could simply match a space preceded by a capital letter, as well as followed by two capital letters separated by a space (using look-arounds). Or the other way around - match a space preceded by two capital letters separated by a space, and then followed by a capital letter.

(?<=[A-Z]) (?=[A-Z] [A-Z])|(?<=[A-Z] [A-Z]) (?=[A-Z])

R-code:

x <- c(
    "Welcome to A I: the best W O R L D!",
    "Hi I R is the B O M B for sure: we A G R E E indeed."
)
gsub("(?<=[A-Z]) (?=[A-Z] [A-Z])|(?<=[A-Z] [A-Z]) (?=[A-Z])", "", x, perl=TRUE)

Live here at ideone.

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