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char testStr[] = "          trim this           ";
char** pTestStr = &testStr;
trim(pTestStr);

int trim(char** pStr)
{
 char* str = *pStr;
 while(isspace(*str)) {
  (*pStr)++;
  str++;
 }

 if(*str == 0) {
  return 0;
 }

 char *end = str + strlen(str) - 1;
 while(end > str && isspace(*end))
  end--;
 *(end+1) = 0;

 return 0;
}
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Duplicate: stackoverflow.com/questions/122616/… –  indiv Jun 17 '10 at 19:37

1 Answer 1

You need to make testStr writeable:

char testStr[] = "          trim this           ";

The problem is that char *ptr = ... has ptr pointing to the actual literal string which is in read-only memory.

By using char testStr[] = ... you are allocating an array and having the array initialized with the same contents as the literal string. Since this is an array, it is writable.

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I get: cannot convert parameter 1 from 'char (*)[38]' to 'char **' –  ComtriS Jun 14 '10 at 17:37
    
@user364100 - no you can't. You'll want to change your function to char* trim(char* pStr) and then return the pointer to the first non-whitespace character. –  R Samuel Klatchko Jun 14 '10 at 20:23
    
I don't want that. I want a trim function that trims in place. –  ComtriS Jun 15 '10 at 20:26
    
@user364100 - it's still doing it in place. The question is whether you modify the input parameter or return a new value. –  R Samuel Klatchko Jun 15 '10 at 21:17
    
Yes, I'd like to pass a pointer to the string, and move that pointer to reflect what's been trimmed off the left. Adding the null terminator to right-trim is easy enough. –  ComtriS Jun 16 '10 at 0:38

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