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Corrected code:

int strrindex(char *s, char *t) {
  int i, j, k, p;

  i = -1;
  for (k = 0; s[k] != '\0'; k++) {
    if (strlen(s) < strlen(t)) break;
    if (s[k] == t[0]) {
      for (p = k; s[p] != '\0'; p++) {
    j = p;
        while (s[j] != '\0' && s[j] == t[j-k] && t[j-k] != '\0') { j++; } 
        if (t[j-k] != '\0') { break; }
    i = k;
      }
    }
  }

  printf("%d\n", i);
  return 0;
}
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8  
Step one: choose better variable names. I recommend at least two characters, maybe even three. :) –  Michael Myers Jul 4 '10 at 5:09
    
possible duplicate of Is there a reverse fn() for strstr –  Joshua Jul 4 '10 at 5:41

6 Answers 6

  for (p = k; s[p] != '\0'; p++) {
    while (s[p] == t[p] && t[p] != '\0') { p++; }

At this point, you are comparing string s starting at position p with string t starting at position 0. So it shouldn't be t[p], but instead t[p - k].

    if (s[p] != t[p] || t[p] != '\0') { i = -1; }

You don't need this at all - if the current section doesn't match, you just leave i at the last match. (which will anyway be -1 if there has been no match so far)

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You don't need that long if statement. Try this instead: if (t[p-k] == '\0') i = k; - this basically accepts the current substring if all characters matched. –  casablanca Jul 4 '10 at 5:27

I think this should work:

 int strrindex(char *s, char *t) {

  int i = -1;
  int j = 0;
  int k = 0;
  for (; s[k]; k++) {
    if(!t[j]) {
      i = k - j;
      j = 0;
    }
    if (s[k] != t[j])
      j = 0;
    else
      j++;
  }
  if(!t[j + 1])
    i = k - j - 1;

  return i;
}
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Didn't really want the answer :) but thanks –  lame Jul 4 '10 at 5:17
    
It may not be the final answer, as I didn't test it (may have off by one errors...). But it's an alternative approach using only one loop :) –  Janick Bernet Jul 4 '10 at 5:18
    
Hehe. We all started like that :) Next time you do something similar, it may only take you a few hours ;) Also, as other people suggested, try using more descriptive variable names (I'm no good role model there...) And I really doubt it will work for any border case (i.e. did you try with the strings being the same?). –  Janick Bernet Jul 4 '10 at 5:25
  • Your loop over p is indexing both s[p] and t[p]. That's incorrect, since they're both different indices.
  • Your if (s[p] != t[p] ...) i = -1; has no effect, because you then immediately set it to k.
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Will modify accordingly and report back. Thanks –  lame Jul 4 '10 at 5:16

You're not the first person to want such a function.

See: Is there a reverse fn() for strstr? for some example implementations.

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There's a great reference on substring search algorithms here: http://www-igm.univ-mlv.fr/~lecroq/string/index.html

With any of them, you can simply switch things around to start with pointers to the last byte of the string and negate the indices.

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There are several bugs in your code. Here are the ones I've found:

  1. You're using p, which is way into s, as an index into the beginning of t. You want to reference t[p-k] instead.
  2. Using p in the inner while loop interferes with the operation of p in the for loop. In fact, you don't need the for loop on p, since the outer for loop takes care of iterating through s.
  3. The while loop doesn't have any guard for when you reach the end of s, so it's pretty easy to run off of the end of s (have a partially matched t at the end of s).
  4. (s[p] != t[p-k] || t[p-k] != '\0') will evaluate to true when t[p-k] == '\0', which is wrong – it's OK if s keeps going after t stops. You can simplify this to just (t[p-k] != '\0').
  5. Setting i to -1 will wipe out any previous find you've made. This is wrong – an invalid match should not invalidate a previous valid match. If you get rid of the extra inner for loop, this can just turn into a continue statement.
  6. i=k needs an else clause so it doesn't wipe out i=-1, or i=-1 needs to break/continue out of the current iteration.
share|improve this answer
    
Um. Well, you fixed one of them. :-P –  Owen S. Jul 4 '10 at 5:36
    
1) Just noted that the inner for loop is unnecessary (modified answer), 2) putting j = p into the test is IMO bad style. –  Owen S. Jul 4 '10 at 5:49

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