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I am splitting an NSString like this: (filter string is an nsstring)

seperatorSet = [NSMutableCharacterSet whitespaceAndNewlineCharacterSet];
    [seperatorSet formUnionWithCharacterSet:[NSCharacterSet punctuationCharacterSet]];
NSMutableArray *words = [[filterString componentsSeparatedByCharactersInSet:seperatorSet] mutableCopy];

I want to put words back into the form of filter string with the original punctuation and spacing. The reason I want to do this is I want to change some words and put it back together as it was originally.

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7 Answers 7

up vote 2 down vote accepted

Since you eliminate the original punctuation, there's no way to turn it back automatically.

The only way is not to use componentsSeparatedByCharactersInSet.

An alternative solution may be to iterate through the string and, for each char, check if it belongs to your character set.
If yes, add the char to a list and the substring to another list (you may use NSMutableArray class). This way, for example, you know that the punctuation char between the first and the second substring is the first character in your list of separators.

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How could I do that? Would you show me some code? –  charleyh Dec 22 '11 at 0:27
    
I edited the answer adding a possible algorithm. –  Saphrosit Dec 22 '11 at 1:22
    
Awesome, Thanks! –  charleyh Dec 22 '11 at 2:57

You can use the pathArray componentsJoinedByString: method of the array class to rejoin the words:

NSString *orig = [words pathArray componentsJoinedByString:@" "];
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Yes, but all the words will be joined by spaces, not the original punctuation. –  charleyh Dec 21 '11 at 23:09

How are you determining which words need to be replaced? Instead of breaking it apart in the first place, perhaps using -stringByReplacingOccurrencesOfString:withString:options:range: would be more suitable.

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I cannot use the -stringByReplacingOccurrencesOfString:withString:options:range: because I want to only filter out occurrences of a words when it is not included in a separate word. For instance, If class were one of my words, I would not want to replace it in "classic". –  charleyh Dec 21 '11 at 22:58
    
Use the spaces to your advantage. You could look for a string like @" class ". This method also allows for certain options when scanning strings. –  Mark Adams Dec 21 '11 at 23:23
    
Ok I see the problem. As @DavidDunham suggested, look into other API. NSLinguisticTagger may be incredibly helpful in dissecting strings. –  Mark Adams Dec 22 '11 at 1:00
    
This is the right solution! Thanks! –  Apollo Feb 21 at 12:09

My guess is you may not be using the best API. If you're really worried about words, you should be using a word-based API. I'm a bit hazy on whether that would be NSDataDetector or something else. (I believe NSRegularExpression can deal with word boundaries in a smarter way.)

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A more robust way to split by words is to use string enumeration. A space is not always the delimiter and not all languages delimit spaces anyway (e.g. Japanese).

NSString * string = @" \n word1!    word2,%$?'/word3.word4   ";

[string enumerateSubstringsInRange:NSMakeRange(0, string.length)
                           options:NSStringEnumerationByWords
                        usingBlock:
 ^(NSString *substring, NSRange substringRange, NSRange enclosingRange, BOOL *stop) {
     NSLog(@"Substring: '%@'", substring);
 }];

 // Logs:
 // Substring: 'word1'
 // Substring: 'word2'
 // Substring: 'word3'
 // Substring: 'word4' 
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If you are using Mac OS X 10.7+ or iOS 4+ you can use NSRegularExpression, The pattern to replace a word is: "\b word \b" - (no spaces around word) \b matches a word boundary. Look at methods replaceMatchesInString:options:range:withTemplate: and stringByReplacingMatchesInString:options:range:withTemplate:.

Under 10.6 pr earlier if you wish to use regular expressions you can wrap the regcomp/regexec C-based functions, they support word boundaries as well. However you may prefer to use one of the other Cocoa options mentioned in other answers for this simple case.

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NSString *myString = @"Foo Bar Blah B..";
NSArray *myWords = [myString componentsSeparatedByCharactersInSet:
                    [NSCharacterSet characterSetWithCharactersInString:@" "]
                    ];
NSString* string = [myWords componentsJoinedByString: @" "];
NSLog(@"%@",string);
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