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How can I detect if a string contains a certain word? For example, I have a string below which reads:

@"Here is my string."

I'd like to know if I can detect a word in the string, such as "is" for example.

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possible duplicate of Searching NSString Cocoa? –  KennyTM Jul 20 '10 at 19:24
17  
can you accept an answer? –  Jacob Relkin Jul 21 '10 at 11:18
    
A cheap-and-dirty solution, if the string is assumed to contain no punctuation, is to concatenate blanks on the front and back of BOTH strings, then do rangeOfString. –  Hot Licks Sep 13 '12 at 19:13

6 Answers 6

With iOS 8 and Swift, we can use localizedCaseInsensitiveContainsString method

 let string: NSString = "Café"
 let substring: NSString = "É"

 string.localizedCaseInsensitiveContainsString(substring) // true
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I hope this helps you,.. add this line at .m file or create a separate class and integrate this code.

@implementation NSString (Contains)

- (BOOL) containsString: (NSString*) substring
{
NSRange range = [self rangeOfString : substring];
BOOL found = ( range.location != NSNotFound );
return found;
}    
@end
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Use the following code to scan the word in sentence.

NSString *sentence = @"The quick brown fox";
NSString *word = @"quack";
if ([sentence rangeOfString:word].location != NSNotFound) {
    NSLog(@"Yes it does contain that word");
}
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how can i get the locations when i use this method on an array? –  judge Mar 9 at 22:25

I recommend using NSLinguisticTagger. We can use it to search Here is my string. His isn't a mississippi isthmus. It is?

NSLinguisticTagger *linguisticTagger = [[NSLinguisticTagger alloc] initWithTagSchemes:@[
                                        NSLinguisticTagSchemeTokenType,
                                        ]
                                                                              options:
                                        NSLinguisticTaggerOmitPunctuation |
                                        NSLinguisticTaggerOmitWhitespace |
                                        NSLinguisticTaggerOmitOther ];
[linguisticTagger setString:@"Here is my string. His isn't a mississippi isthmus. It is?"];
[linguisticTagger enumerateTagsInRange:NSMakeRange(0,
                                                   [[linguisticTagger string] length])
                                scheme:NSLinguisticTagSchemeTokenType
                               options:
 NSLinguisticTaggerOmitPunctuation |
 NSLinguisticTaggerOmitWhitespace |
 NSLinguisticTaggerOmitOther |
 NSLinguisticTaggerJoinNames
                            usingBlock:^(NSString *tag, NSRange tokenRange, NSRange sentenceRange, BOOL *stop) {
                                NSLog(@"tag: %@, tokenRange: %@, sentenceRange: %@, token: %@",
                                      tag,
                                      NSStringFromRange(tokenRange),
                                      NSStringFromRange(sentenceRange),
                                      [[linguisticTagger string] substringWithRange:tokenRange]);
                            }];

This outputs:

tag: Word, tokenRange: {0, 4}, sentenceRange: {0, 19}, token: Here
tag: Word, tokenRange: {5, 2}, sentenceRange: {0, 19}, token: is
tag: Word, tokenRange: {8, 2}, sentenceRange: {0, 19}, token: my
tag: Word, tokenRange: {11, 6}, sentenceRange: {0, 19}, token: string
tag: Word, tokenRange: {19, 3}, sentenceRange: {19, 33}, token: His
tag: Word, tokenRange: {23, 2}, sentenceRange: {19, 33}, token: is
tag: Word, tokenRange: {25, 3}, sentenceRange: {19, 33}, token: n't
tag: Word, tokenRange: {29, 1}, sentenceRange: {19, 33}, token: a
tag: Word, tokenRange: {31, 11}, sentenceRange: {19, 33}, token: mississippi
tag: Word, tokenRange: {43, 7}, sentenceRange: {19, 33}, token: isthmus
tag: Word, tokenRange: {52, 2}, sentenceRange: {52, 6}, token: It
tag: Word, tokenRange: {55, 2}, sentenceRange: {52, 6}, token: is

It ignores His mississippi and isthmus and even identifies is inside of isn't.

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Here's how I would do it:

NSString *someString = @"Here is my string";
NSRange isRange = [someString rangeOfString:@"is " options:NSCaseInsensitiveSearch];
if(isRange.location == 0) {
   //found it...
} else {
   NSRange isSpacedRange = [someString rangeOfString:@" is " options:NSCaseInsensitiveSearch];
   if(isSpacedRange.location != NSNotFound) {
      //found it...
   }
}

You can easily add this as a category onto NSString:

@interface NSString (JRStringAdditions) 

- (BOOL)containsString:(NSString *)string;
- (BOOL)containsString:(NSString *)string
               options:(NSStringCompareOptions)options;

@end

@implementation NSString (JRStringAdditions) 

- (BOOL)containsString:(NSString *)string
               options:(NSStringCompareOptions)options {
   NSRange rng = [self rangeOfString:string options:options];
   return rng.location != NSNotFound;
}

- (BOOL)containsString:(NSString *)string {
   return [self containsString:string options:0];
}

@end
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Here is a handy category for NSString goo.gl/SNkk0 –  Phong Le Nov 10 '12 at 19:04
2  
Actually you can just add space on the beginning and end of the string and " is " will match string begins with "is" –  Jim Thio Nov 12 '12 at 7:41
    
It stuns me that these are not part of the standard class. Thanks, @Jacob! –  big_m Jul 19 '13 at 19:40
1  
Actually, "length" of NSRange should be tested...not "location".Here it is directly from source: "These methods return length==0 if the target string is not found. So, to check for containment: ([str rangeOfString:@"target"].length > 0). Note that the length of the range returned by these methods might be different than the length of the target string, due composed characters and such." –  GtotheB Apr 22 at 0:01

A complete solution would first scan for the string (without added blanks), then check if the immediately prior character is either blank or beginning of line. Similarly check if the immediately following character is either blank or end of line. If both tests pass then you have a match. Depending on your needs you might also check for ,, ., (), etc.

An alternative approach, of course, is to parse the string into words and check each word individually.

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