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I've got an algorithm to find anagrams within a group of eight-letter words. Effectively it's alphabetizing the letters in the longer word, doing the same with the shorter words one by one, and seeing if they exist in the longer word, like so:

tower = eortw two = otw rot = ort

The issue here is that if I look for ort in eortw (or rot in tower), it'll find it, no problem. Rot is found inside tower. However, otw is not inside eortw (or two in tower), because of the R in the middle. Ergo, it doesn't think two is found in tower.

Is there a better way I can do this? I'm trying to do it in Objective-C, and both the eight-letter words and regular words are stored in NSDictionaries (with their normal and alphabetized forms).

I've looked at various other posts re. anagrams on StackOverflow, but none seem to address this particular issue.

Here's what I have so far:

- (BOOL) doesEightLetterWord: (NSString* )haystack containWord: (NSString *)needle {
    for (int i = 0; i < [needle length] + 1; i++) {
        if (!needle) {
            NSLog(@"DONE!");
        }

        NSString *currentCharacter = [needle substringWithRange:NSMakeRange(i, 1)];
        NSCharacterSet *set = [NSCharacterSet characterSetWithCharactersInString: currentCharacter];
        NSLog(@"Current character is %@", currentCharacter);
        if ([haystack rangeOfCharacterFromSet:set].location == NSNotFound) {
            NSLog(@"The letter %@ isn't found in the word %@", currentCharacter,    haystack);
            return FALSE;
        } else {
            NSLog(@"The letter %@ is found in the word %@", currentCharacter, haystack);
            int currentLocation = [haystack rangeOfCharacterFromSet: set].location;
            currentLocation++;    
            NSString *newHaystack = [haystack substringFromIndex: currentLocation];
            NSString *newNeedle = [needle substringFromIndex: i + 1];
            NSLog(@"newHaystack is %@", newHaystack);
            NSLog(@"newNeedle is %@", newNeedle);
        }
    }
}
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Remove all letters from the (ordered) haystack up to and including the first occurrence of the first character from the needle. Repeat until one or other of the words is empty? – Edd Nov 14 '12 at 14:08
Sorry, not sure I understand the needle/haystack analogy. Could you be a little more specific? – lukech Nov 14 '12 at 14:11
Apologies. I don't have time to give a concrete example until this evening, but the haystack is the word you're looking in (The longer word so say "eortw"), and the needle is the term you're looking for (You're actually only looking for the first letter each time, but say this is "otw" or "ort") – Edd Nov 14 '12 at 14:13
Okay, I think that makes sense, I can definitely have a try with it. If you do have more info later, I'd be very grateful, but thanks for this, it should work! – lukech Nov 14 '12 at 14:17

3 Answers

up vote 0 down vote accepted

This is one that approach I might take for finding out if one ordered word contained all of the letters of another ordered word. Note that it won't find true anagrams (That simply requires the two ordered strings to be the same) but this does what I think you're asking for:

+(BOOL) does: (NSString* )longWord contain: (NSString *)shortWord {
    NSString *haystack = [longWord copy];
    NSString *needle = [shortWord copy];
    while([haystack length] > 0 && [needle length] > 0) {
        NSCharacterSet *set = [NSCharacterSet characterSetWithCharactersInString: [needle substringToIndex:1]];
        if ([haystack rangeOfCharacterFromSet:set].location == NSNotFound) {
            return NO;
        }
        haystack = [haystack substringFromIndex: [haystack rangeOfCharacterFromSet: set].location+1];
        needle = [needle substringFromIndex: 1];
    }

    return YES;
}
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Looks good. Now to see whether stringAfterIndeex or getFirstIndex exist in any form in Objective-C.. – lukech Nov 14 '12 at 14:46
@lukech I think you can use substringFromIndex: and rangeOfCharacterFromSet: – Edd Nov 14 '12 at 14:50
substringFromIndex: will work, but I need a way to get the first instance of that substring. I've revised to add the method so far above. – lukech Nov 14 '12 at 14:57
Also, are you returning a method call there? – lukech Nov 14 '12 at 15:08
It's a recursive approach, so it's saying "return the value of this function called with these parameters". I guess you could use a loop until one or other of the strings is empty. – Edd Nov 14 '12 at 15:16
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up vote 1 down vote

If you use only part of the letters it isn't a true anagram.

A good algorithm in your case would be to take the sorted strings and compare them letter by letter, skipping mis-matches in the longer word. If you reach the end of the shorter word then you have a match:

char *p1 = shorter_word;
char *p2 = longer_word;
int match = TRUE;
for (;*p1; p1++) {
  while (*p2 && (*p2 != *p1)) {
    p2++;
  }
  if (!*p2) {
    /* Letters of shorter word are not contained in longer word */
    match = FALSE;
  }
}
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up vote 0 down vote

The simplest (but not most efficient) way might be to use NSCountedSet. We can do this because for counted sets, [a isSubsetOfSet:b] return YES if and only if [a countForObject:object] <= [b countForObject:object] for every object in a.

Let's add a category to NSString to do it:

@interface NSString (lukech_superset)

- (BOOL)lukech_isSupersetOfString:(NSString *)needle;

@end

@implementation NSString (lukech_superset)

- (NSCountedSet *)lukech_countedSetOfCharacters {
    NSCountedSet *set = [NSCountedSet set];
    [self enumerateSubstringsInRange:NSMakeRange(0, self.length) options:NSStringEnumerationByComposedCharacterSequences usingBlock:^(NSString *substring, NSRange substringRange, NSRange enclosingRange, BOOL *stop) {
        [set addObject:substring];
    }];
    return set;
}

- (BOOL)lukech_isSupersetOfString:(NSString *)needle {
    return [[needle lukech_countedSetOfCharacters] isSubsetOfSet:[self lukech_countedSetOfCharacters]];
}

@end
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