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I am working on a program to check if a particular string is present in the given string i.e if one string is sub string of another string.

For eg:

1)String: YoungPeople --> Substring to be checked: ungPeo

  The output should return true.

2)String: Hello How are You? --> Substring to be checked: l*are

    The output should return true.

I have used the naive based searching algorithm and it works perfectly fine for the first input.

But i am having trouble in the second kind of input where asterisk(*) is present which should be treated as a regular expression i.e. matches zero or more characters.

How should i check for the sub string having an * sign?

Should i try to use the same naive algorithm for searching the character before * and for the string after it?..Or is there a better approach to solve this problem?

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You already provided a good approach. Try it and see if there is any problem with it. –  Daniel Daranas Jun 9 '13 at 11:58
2  
I think this is not a trivial task. you should check both possibilities - that you are reading the * or a concrete text. the best way is to use the an actual regular expression library. –  Elazar Jun 9 '13 at 11:59
    
strchr doesn't work for you? –  yaccz Jun 9 '13 at 12:04
1  
Do you mean wildcards? Windows API PathMatchSpec() can do this, or fnmatch() on linux –  holmium Jun 9 '13 at 12:05
    
This looks more like glob pattern matching than a regex. –  gcbenison Jun 9 '13 at 17:36

4 Answers 4

How should i check for the sub string having an * sign?

Upon reading a *, you need to try 1-2 below.

... use the same naive algorithm for searching ... is there a better approach ...?*

There are better methods. A recursive one follows.

[Edit note: 6/10 found/fixed bug]

As you progress through the string, use recursion to check the rest of the string.
The * simple allows for 2 candidate paths:
1) advance the str
2) advance the substr
Else a matching char allows advancing both.

// StarCompare() helper function
bool StarCmp(const char *str, const char *pat) {
  if (*pat == '\0') return 1;
  if (*pat == '*') {
    if (*str) {
      // advance str and use the * again
      if (StarCmp(str + 1, pat)) return 1;
    }
    // let * match nothing and advacne to the next pattern
    return StarCmp(str, pat + 1);
  }
  if (*pat == *str) {
    return StarCmp(str + 1, pat + 1);
    }
  return 0;
}  

bool StarCompare(const char *str, const char *pat) {
  if (!str || !pat) return 0;
  do {
    if (StarCmp(str, pat)) return 1;
  } while (*str++);
  return 0;
  }

[Edit Test code in previous version]

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The GNU Regex Library seems like what you are looking for. If you are not familiar with regular expression, check this site.

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Probably overkill -- fnmatch(3) seems like a better choice. –  Chris Dodd Jun 9 '13 at 19:28

Here is what you have to do:

  1. Split the search string by the * character
  2. Look for each of the parts (in the correct order) in the string you are searching

Alternatively, you can use regexes as other people have suggested.

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A good place to look for a well-written implementation of glob matching would be the bash sources. But here's a simple recursive implementation that works:

#include <assert.h>

int
_glob_match(char * pattern, char * str)
{
  if (!*pattern)          return 1;
  if (!*str)              return 0;
  if (*pattern == '*')    return match_any_tail(pattern + 1, str);
  if (*pattern != *str)   return 0;
  else                    return _glob_match(pattern + 1, str + 1);
}

int
match_any_tail(char * pattern, char * str)
{
  for (; *str; str++)
    if (_glob_match(pattern, str))
      return 1;
  return 0;
}

int glob_match(char * pattern, char * str)
{
  return match_any_tail (pattern, str);
}

void
main()
{
  assert(glob_match("ungPeo", "YoungPeople"));
  assert(glob_match("l*are",  "Hello How are You?"));
}
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No, that would let pattern "abc" match string "abbc". –  gcbenison Jun 10 '13 at 2:31
    
@chux You're absolutely right about the "abc", "abbc" case - thanks. It turns out though that if you change *pattern != *str to a failure, then match_any_tail gives the correct glob-matching behavior for this case and the two in the question. –  gcbenison Jun 10 '13 at 5:32

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