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I'm trying to detect <br> or <Br> or < br>,... in NSString and replace it with \n. I use NSRegularExpression and i wrote this code:

NSString *string = @"123 < br><br>1245; Ross <Br>Test 12<br>";
NSError *error = NULL;
NSRegularExpression *regex = [NSRegularExpression regularExpressionWithPattern:@"<[* ](br|BR|bR|Br|br)>" options:NSRegularExpressionCaseInsensitive error:&error];
NSString *modifiedString = [regex stringByReplacingMatchesInString:string options:0 range:NSMakeRange(0, [string length]) withTemplate:@"\n"];


NSLog(@"%@", modifiedString);

it works fine but it replace first matching only, not replacing all matches. Please help me to detect all matches and replace them. Thanks

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2 Answers

up vote 1 down vote accepted

You're close, you need to have it handle any number of spaces after your initial <, and handle if it doesn't have any space at all.

Using your example, you can use the regex <\s*(br|BR|bR|Br|br)> to have it accept the 0 to N spaces before your BR works. You can also simplify it a little bit more by making it case insensitive with i, which allows for a cleaner looking regex to handle all the variations on BR you will see. To do that, use (?i)<\s*br>.

I think for completeness you can also include an arbitrary amount of space AFTER the br, just to handle anything that could be thrown. I agree with adding in some sort of catch for a /> to end the pattern, since <br/> is valid HTML as well. It makes the regex look a little more crazy, but it boils down to just adding the other 3 pieces.

(?i)<\s*br\s*\/?\s*>

It looks really scary, but breaks down very simply into a few parts:

  1. (?i) turns on case insensitive to handle the variations on the br.
  2. <\s* is the start of the tag directly followed by an arbitrary number of spaces.
  3. br\s* is your br chars followed by an arbitrary number of spaces.
  4. \/? is to handle 0 or 1 instances of the closing slash (to handle HTML valid tags like <br/> and <br>.
  5. \s*> is handling an arbitrary number of spaces and then the closing >.
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Thanks a lot Walls , Regex (?i)<\s*br> works like a charm!! –  Hossam Ghareeb Apr 4 '13 at 14:59
1  
@Hossam I agree with David's inclusion of the / handling at the end, so I have added that in, as well as a breakdown of the regex into smaller pieces to help you out in the future. Regex can be scary at first, but breaking it down little by little makes it a whole lot easier to learn at first. –  Walls Apr 4 '13 at 15:13
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You currently don't handle an arbitrary amount of white space. For good measure you should also handle white space after br and also handle the closing slash since <br /> is the correct way of writing the line break in HTML.

You would end up with an pattern that looks like this

<\s*(br|BR|bR|Br|br)\s*\/*>

or written as a NSRegularExpression

NSError *error = NULL;
NSRegularExpression *regex = 
  [NSRegularExpression regularExpressionWithPattern:@"<\\s*(br|BR|bR|Br|br)\\s*\\/*>" 
                                            options:0 
                                              error:&error];

Edit

You could also make the pattern more compact by separating the two letters

<\s*([bB][rR])\s*\/*>
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Thanks for mention the <br/> case for me, i added it to my regex –  Hossam Ghareeb Apr 4 '13 at 15:06
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