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I am trying to extract n 3-tuples (Si, Pi, Vi) from a string.

The string contains at least one such 3-tuple. Pi and Vi are not mandatory.

SomeTextxyz@S1((property(P1)val(V1))@S2((property(P2)val(V2))@S3
           |----------1-------------|----------2-------------|-- n 

The desired output would be:

Si,Pi,Vi.

So for n occurrences in the string the output should look like this:

[S1,P1,V1] [S2,P2,V2] ... [Sn-1,Pn-1,Vn-1] (without the brackets)

Example

The input string could be something like this:

MyCarGarage@Mustang((property(PS)val(500))@Porsche((property(PS)val(425‌​)).

Once processed the output should be:

Mustang,PS,500 Porsche,PS,425

Is there an efficient way to extract those 3-tuples using a regular expression (e.g. using C++ and std::regex) and what would it look like?

share|improve this question
    
yes along with STL. –  diver_182 May 28 '13 at 19:09
    
What's the expected output ? –  HamZa May 28 '13 at 19:11
2  
It's not clear what you need to match. If it really is "S1,V1,P1" etc., then all you really need to extract is the number n since the rest is implied. –  Raymond Chen May 28 '13 at 19:38
1  
Okay, you need to specify what you are actually parsing. Please explain in the question "S is everything between the @ and the opening parenthesis. P is the string inside the parentheses that come after the word property. V is the string inside the parentheses that come after the word val." Actually, once you spell it out, the regular expression pretty much writes itself. –  Raymond Chen May 28 '13 at 20:04
1  
ideone.com/JelYjv Granted, it could be done better, but I'm no C++ expert. It's been a while since I did string manipulation in C or C++, so all that could be done better, but this is the basic concept, I think. –  FrankieTheKneeMan May 28 '13 at 21:31

2 Answers 2

up vote 0 down vote accepted

http://ideone.com/S7UQpA

I used C's <regex.h> instead of std::regex because std::regex isn't implemented in g++ (which is what IDEONE uses). The regular expression I used:

"                        In C(++)? regexes are strings.
  @                      Literal match
  ([^(@]+)               As many non-@, non-( characters as possible.  This is group 1
  (                      Start another group (group 2)
    \\(\\(property\\(    Yet more literal matching
    ([^)]+)              As many non-) characters as possible.  Group 3.
    \\)val\\(            Literal again
    ([^)]+)              As many non-) characters as possible.  Group 4.
    \\)\\)               Literal parentheses
  )                      Close group 2
  ?                      Group 2 optional
"                        Close Regex

And some c++:

int getMatches(char* haystack, item** items){

first, calculate the length of the string (we'll use that later) and the number of @ found in the string (the maximum number of matches)

    int l = -1, ats = 0;
    while (haystack[++l])
        if (haystack[l] == '@')
            ats++;

malloc a large enough array.

    *items = (item*) malloc(ats * sizeof(item));
    item* arr = *items;

Make a regex needle to find. REGEX is #defined elsewhere.

    regex_t needle;
    regcomp(&needle, REGEX, REG_ICASE|REG_EXTENDED);
    regmatch_t match[5];

ret will hold the return value (0 for "found a match", but there are other errors you may want to be catching here). x will be used to count the found matches.

    int ret;
    int x = -1;

Loop over matches (ret will be zero if a match is found).

    while (!(ret = regexec(&needle, haystack, 5, match,0))){
        ++x;

Get the name from match1

        int bufsize = match[1].rm_eo-match[1].rm_so + 1;
        arr[x].name = (char *) malloc(bufsize);
        strncpy(arr[x].name, &(haystack[match[1].rm_so]), bufsize - 1);
        arr[x].name[bufsize-1]=0x0;

Check to make sure the property (match[3]) and the value (match[4]) were found.

        if (!(match[3].rm_so > l || match[3].rm_so<0 || match[3].rm_eo > l || match[3].rm_so< 0
                || match[4].rm_so > l || match[4].rm_so<0 || match[4].rm_eo > l || match[4].rm_so< 0)){

Get the property from match[3].

            bufsize = match[3].rm_eo-match[3].rm_so + 1;
            arr[x].property = (char *) malloc(bufsize);
            strncpy(arr[x].property, &(haystack[match[3].rm_so]), bufsize - 1);
            arr[x].property[bufsize-1]=0x0;

Get the value from match[4].

            bufsize = match[4].rm_eo-match[4].rm_so + 1;
            arr[x].value = (char *) malloc(bufsize);\
            strncpy(arr[x].value, &(haystack[match[4].rm_so]), bufsize - 1);
            arr[x].value[bufsize-1]=0x0;
        } else {

Otherwise, set both property and value to NULL.

            arr[x].property = NULL;
            arr[x].value = NULL;
        }

Move the haystack to past the match and decrement the known length.

        haystack = &(haystack[match[0].rm_eo]);
        l -= match[0].rm_eo;
    }

Return the number of matches.

    return x+1;
}

Hope this helps. Though it occurs to me now that you never answered kind of a vital question: What have you tried?

share|improve this answer
    
... Why did this get Downvoted? Anyone know? –  FrankieTheKneeMan May 29 '13 at 20:36

@(.*?)\(\(property\((.*?)\)val\((.*?)\)\) should do the trick.

example at http://regex101.com/r/bD1rY2

@                # Matches the @ symbol
(.*?)            # Captures everything until it encounters the next part (ungreedy wildcard)
\(\(property\(   # Matches the string "((property(" the backslashes escape the parenthesis
(.*?)            # Same as the one above
\)val\(          # Matches the string ")val(" 
(.*?)            # Same as the one above
\)\)             # Matches the string "))"

How you should implement this in C++ i don't know but that is the easy part :)

share|improve this answer
    
This won't match the case where there is no property/value pair. –  FrankieTheKneeMan May 29 '13 at 16:57

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