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The strings being examined resemble the following (notice the whitespace between the brackets):

[name]  [address ] [ zip] [ phone number ]

The expression I am presently using...

\[([^\])]*)\]

...successfully captures each text within the brackets, but it also grabs the leading and trailing space so I end up with:

"name"  "address "  " zip"  " phone number "

But what I seek is:

"name"  "address"  "zip"  "phone number"

How can the regex be convinced to not capture the whitespace in these examples? (With the exception of embedded whitespace - such as that between the words in "phone number".)

(Note: I know I could just trim it from the captured variable after the expression is done, but I'm trying to do it within the context of the expression.)

Thanks for any ideas! Below is the exact code I'm using to test this:

NSRegularExpression *regex = [NSRegularExpression regularExpressionWithPattern:@"\\[([^\\])]*)\\]" options:0 error:nil];

NSString *string = @" [name] [address ] [ zip] [ phone number ] ";

NSString *modifiedString = [regex stringByReplacingMatchesInString:string options:0 range:NSMakeRange(0, [string length])
    withTemplate:@"\n\n[$1]"]; //note: adding brackets back here just to make it easy to see if the space has been trimmed properly from the captured value

NSLog(@"\n\n%@", modifiedString);
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2 Answers 2

up vote 1 down vote accepted

I'm going to go through this step by step.

First, the ([^\])]*) is incorrect. This means "a sequence of 0 or more characters, as long as possible, not containing ] or )."

For instance, for this expression:

 [name] [address ) ] [ zip] [ phone number ] 

...the address part will be skipped over, as "address )" does not match [^\)]]* (which means "a sequence of zero or more characters, not including ) and ]."

We want ([^\]]*) instead, which will not skip ).

Next, we want to eat all the spaces around the capture. For that, we use two  * sequences, one on each side of the capture:

\[ *([^\]]*) *\]

Now we need to get tricky! The [^\]]* is greedy by default. That means some of the spaces to either side may be matched by it, and thus included in the capture! We want to use the non greedy version, [^\]]*?, instead. This means "a sequence of 0 or more characters, not containing ), as short as possible while conforming to the rest of the regular expression."

\[ *([^\]]*?) *\]

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This is kind of an amusing question to me, as I've been writing regex and Objective-C for years, but I've never combined them by using NSRegularExpression before. :) –  Steven Fisher Feb 16 '13 at 3:19
1  
Thank you it's perfect! If you're new to NSRegularExpression check out its "enumerateMatchesInString:options:range:usingBlock:" method for some blocky goodness: blog.kvnd.me/post/10186864667/regular-expressions-in-ios –  Monte Hurd Feb 16 '13 at 3:25
1  
Based on this conversation, I've rewritten my answer. I think this will serve better for future readers, going through the transformation from what you provided to the final answer step by step. How's that? –  Steven Fisher Feb 16 '13 at 3:54
1  
Are you missing the "?" in the non-greedy snippet in the last paragraph of the updated explanation? Great explanation by the way! –  Monte Hurd Feb 16 '13 at 4:00
1  
Indeed, great catch. regexes are dense little things, aren't they? –  Steven Fisher Feb 16 '13 at 4:03
@"\\[\\s*([^\\]]+?)\\s*\\]"

or

@"\\[ *([^\\]]+?) *\\]"

Be careful to enter the spaces in the above.

This will not capture the spaces: NSLog output
[name]
[address]
[zip]
[phone number]

The "?" makes the preceeding meta character non-greedy, greedy is the default.

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