2

I am trying to create a regular expression that will allow me to split the strings below on the central comma only.

str_1 <- "N(0, 1)"
str_2 <- "N(N(0.1, 1), 1)"
str_3 <- "N(U(0, 1), 1)"
str_4 <- "N(0, T(0, 1))"
str_5 <- "N(N(0, 1), N(0, 1))"

Think of them as parameters of the distributions. Now, I would like to split on the comma of the "top-level".

Some details: The numbers can be decimal numbers and both positive and negative. They will always be grouped either inside U(), N(), LN() or T() and separated by a comma. More groupings will be added later, so a more general solution is required or that it is easily extendable. What I am looking to do is split the expressions at the "top level" comma.

Now, the first case of str_1 is straight forward using:

unlist(strsplit(str_1, ",", perl = TRUE))

Before I proceed, I need to know whether I have a nesting. I know that I will have more than one of either N, U, LN or T if there is a nesting. So to check, I did (for str_2):

length(attr(gregexpr("(N|LN|U|T)", str_2, perl = TRUE)[[1]], "match.length")) > 1

Having established whether I have a nesting (might be a cleaner way to test this?), I can proceed to work out the split for the remaining strings. However, this is where I am stuck. Given that I can't count the commas since the cases str_2, str_3 and str_4 would be ambiguous. How would I ensure that I only split on the central comma?

I expect the following outputs (so trimming away the first letter and parenthesis and last parenthesis)

# str_2
"N(0.1, 1)" "1"

# str_3
"U(0, 1)" "1"

# str_4
"0" "T(0, 1)"

# str_5
"N(0, 1)" "N(0, 1)"

I would like to stay with base R to reduce the number of dependencies for the code if possible. Any help is much appreciated. It is also possible that this is not solvable by a regex, but requires a programatic approach possibly by recursion as suggeste in this Java question.

3
  • 2
    This problem is a dead ringer for a formal parser, not regex. That being said, there might be a regex solution. Commented Dec 10, 2020 at 13:18
  • strsplit(substring(str_2, 3, nchar(str_2)-1), ",(?![^()]*\\))", perl=TRUE) Commented Dec 10, 2020 at 13:19
  • 1
    Best to use a lexical analysis tool (lex) and a grammar parser (yacc). There are however regex flavors that can scan nested structures. It is also possible to do multiple parses with any regex engine: 1. annotate the nesting level to each parenthesis, 2. scan for opening and closing parenthesis of same level, 3. remove the nesting annotation. See details at twiki.org/cgi-bin/view/Blog/BlogEntry201109x3 Commented Dec 10, 2020 at 22:32

3 Answers 3

2

If your character vectors are in the format you showed, you can achieve what you need with a single PCRE regex:

(?:\G(?!^)\s*,\s*|^N\()\K(?:\d+|\w+(\([^()]*(?:(?1)[^()]*)*\)))(?=\s*,|\)$)

See the regex demo. Details

  • (?:\G(?!^)\s*,\s*|^N\() - end of the previous successful match (\G(?!^)) and then a comma enclosed with zero or more whitespace chars (\s*,\s*) or a N( string at the start of the string (^N\()
  • \K - a match reset operator that discards all text matched so far from the current match memory buffer
  • (?: - start of non-capturing group
    • \d+ - one or more digits
    • | - or
    • \w+ - one or more word chars
    • (\([^()]*(?:(?1)[^()]*)*\)) - Group 1 (needed for recursion to work correctly): a (, then any zero or more chars other than a ( and ), then zero or more occurrences of the Group 1 pattern (recursed) and then zero or more chars other than ( and ) and then a ) char
  • ) - end of the non-capturing group
  • (?=\s*,|\)$) - immediately followed with zero or more whitespaces and then a comma or ) char at the end of string.

See the regex demo:

strs <- c("N(0, 1)", "N(N(0.1, 1), 1)", "N(U(0, 1), 1)", "N(0, T(0, 1))", "N(N(0, 1), N(0, 1))")
p <- "(?:\\G(?!^)\\s*,\\s*|^N\\()\\K(?:\\d+|\\w+(\\([^()]*(?:(?1)[^()]*)*\\)))(?=\\s*,|\\)$)"
regmatches(strs, gregexpr(p, strs, perl=TRUE))
# => [[1]]
#    [1] "0" "1"
#    
#    [[2]]
#    [1] "N(0.1, 1)" "1"        
#    
#    [[3]]
#    [1] "U(0, 1)" "1"      
#    
#    [[4]]
#    [1] "0"       "T(0, 1)"
#    
#    [[5]]
#    [1] "N(0, 1)" "N(0, 1)"
1
  • Thank you for the great explanation of the components of the expression as well. Much appreciated.
    – edsandorf
    Commented Dec 15, 2020 at 10:39
2

If we consider that the structure remains the same, then we could do:

lapply(parse(text=strings), function(x)c(deparse(x[[2]]), deparse(x[[3]])))

[[1]]
[1] "0" "1"

[[2]]
[1] "N(0.1, 1)" "1"        

[[3]]
[1] "U(0, 1)" "1"      

[[4]]
[1] "0"       "T(0, 1)"

[[5]]
[1] "N(0, 1)" "N(0, 1)"

strings <- c("N(0, 1)", "N(N(0.1, 1), 1)", "N(U(0, 1), 1)", "N(0, T(0, 1))", "N(N(0, 1), N(0, 1))")
2

Define s as a character vector of strings. We compute the cumulative number of left parentheses minus the cumulative number of right parentheses and replace any comma for which that difference is 0 with semicolon and then split that.

To do that we use gsubfn which is like gsub except the replacement need not be a string but can be a proto object. The pre method of the proto object runs at the beginning of each string and the fun method runs for each match of the pattern passed to gsubfn. The pre method defined below sets lev to 0 where lev will hold the cumulative difference discussed above. fun is run at each match to left parenthesis, right parenthesis or comma and each time we get a match to:

  • left parenthesis it will increment lev
  • right parenthesis it will decrement lev
  • comma it will emit semicolon replacing the comma if lev == 0

Remove the junk at beginning and end of the input s using sub, run gsubfn and then split the result at semicolon. At the end we simplify the result into a data frame. The output character vectors each have length 2 here but if they can have different lengths then omit as.data.frame.

library(gsubfn)
library(magrittr)


# s is char vec; rm is TRUE if 1st two chars & last one to be removed
# output is list of char vecs
Split <- function(s, rm = TRUE) {
  p <- proto(
    pre = function(this) this$lev <- 0,
    fun = function(this, x) {
      this$lev <- this$lev + ( x == "(" ) - ( x == ")" )
      if (x == "," && this$lev == 0) ";" else x
    }
  )

  if (rm) s <- sub("^..(.*).$", r"{\1}", s)
  s %>% gsubfn(r"{[\(\),]}", p, .) %>% strsplit(" *; *")
}

# test 1
s <- c(str_1 = "N(0, 1)", str_2 = "N(N(0.1, 1), 1)", str_3 = "N(U(0, 1), 1)", 
       str_4 = "N(0, T(0, 1))", str_5 = "N(N(0, 1), N(0, 1))")
s %>% Split %>% as.data.frame
##   str_1     str_2   str_3   str_4   str_5
## 1     0 N(0.1, 1) U(0, 1)       0 N(0, 1)
## 2     1         1       1 T(0, 1) N(0, 1)

Note that this can work with any number of arguments:

# test 2
w <- "lognormal(N(0, 1), 1), lognormal(0, U(0, 1)), beta(U(1, 1), 2), N(0, 1)"
w %>% Split(rm = FALSE)  %>% unlist
## [1] "lognormal(N(0, 1), 1)" "lognormal(0, U(0, 1))" "beta(U(1, 1), 2)"     
## [4] "N(0, 1)"   

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service and acknowledge you have read our privacy policy.

Not the answer you're looking for? Browse other questions tagged or ask your own question.