Sign up ×
Stack Overflow is a community of 4.7 million programmers, just like you, helping each other. Join them; it only takes a minute:

I have a string of format NSString *CalculationFormula = @"((Col(202)/Col(201)-1)*100"; I need to replace all occurrences of Col(number) with ABC(number * 10)

Please help ...

Thanks, Ben

share|improve this question

1 Answer 1

up vote 1 down vote accepted

There's some ambiguity in the desired results. For example, should the result be "ABC(202 * 10)" or "ABC(2020)"? I'm going to assume the latter. Since regex is fairly generic, here's a Perl snippet that accomplishes what I think you want, followed by its translation into Cocoa. I've given both, because it's much easier to see what's going on there before moving onto NSRegularExpression because the latter has so many more escapes in the pattern.

Perl version:

#!/usr/bin/perl -w
use strict;

my $search_text = "((Col(202)/Col(201)-1)*100";

$search_text =~ s|Col\((?P<num>\d+)\)|ABC($+{num}0)|g;
print $search_text;

Prints: ((ABC(2020)/ABC(2010)-1)*100

So, the matching pattern is Col\((?P<num>\d+)\) and the substitution pattern ABC($+{num}0

Cocoa version:

#import <Foundation/Foundation.h>

int main(int argc, char *argv[]) {
    NSAutoreleasePool *p = [[NSAutoreleasePool alloc] init];

    NSRegularExpression *regex = nil;
    regex = [NSRegularExpression regularExpressionWithPattern:@"Col\\((\\d+)\\)" options:NSRegularExpressionCaseInsensitive error:nil];
    NSString *searchText = @"((Col(202)/Col(201)-1)*100";
    NSString *newText = [regex stringByReplacingMatchesInString:searchText options:0 range:NSMakeRange(0,[searchText length]) withTemplate:@"ABC($10)"];
    NSLog(@"new = %@",newText);
    [p release];


2012-09-18 12:30:26.880 Untitled[22405:707] new = ((ABC(2020)/ABC(2010)-1)*100

Now, if my original assumption was wrong and you literally want "num * 10" in the result,then the substitution pattern is:

@"ABC($1 * 10)"
share|improve this answer
Thanks a lot Alan ... – Ben861305 Sep 18 '12 at 19:19

Your Answer


By posting your answer, you agree to the privacy policy and terms of service.

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