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I've a function stoi like that:

static int *stoi(const char *c) {
    int *r = new int[2];
    r[1] = sscanf(c, "%d", &r[0]);
    return r;
}

When I give c = "a5" for example, it doesn't work.

When I give c = "543336535", it works.

But when I give c = "45sdfff-sdbsdf esg5sq4f" it will return r[0] = 45, and I don't want that because there is some non-digit characters after 45...

I only want my function to read a number-only string.

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3  
Pick a single language -- C or C++? –  ildjarn May 17 '12 at 17:20
    
Anyone, if it's possible in C, in C, else, in C++. –  Quent42340 May 17 '12 at 17:22
    
new int[2] is a poor style in C++, use std::array or std::vector. –  Fanael May 17 '12 at 17:23
    
@Quent42340 : Of course it's possible in C. ;-] –  ildjarn May 17 '12 at 17:25

2 Answers 2

For a minimal change to the code you already have, you can use the %n feature of sscanf:

int chars_read;
r[1] = sscanf(c, "%d%n", &r[0], &chars_read);

If chars_read is less than the length of the string, then sscanf didn't consume all the characters, so the string didn't consist entirely of a single integer.

The Linux documentation for scanf points out that the additional example introduced by Technical Corrigendum 1 contradicts the standard, but in the meantime, the standard was updated to resolve the conflict. Here's how you can interpret the results in the face of uncertain behavior of sscanf implementations you might encounter:

switch (r[1]) {
  case EOF: // empty string
    break;
  case 0: // doesn't start with numeric characters
    break;
  case 1: // starts with number; sscanf follows standards
  case 2: // starts with number; sscanf follows TC1
    if (c[chars_read] == '\0')
      r[1] = 1; // we read entire string
    else
      r[1] = 0; // didn't read entire string; pretend we read nothing
    break;
  default: // shouldn't happen
    assert(FALSE);
}
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Thanks it works now. –  Quent42340 May 17 '12 at 17:30
    
The scanf manpage warns against using the return value of scanf with a %n format. It might be better to set r[1] = (chars_read==strlen(c)). –  Dave May 17 '12 at 17:50
    
Thanks for that, @Dave. I think my revision covers everything now. If not, please edit. –  Rob Kennedy May 17 '12 at 18:26

If you're using C, you can use strtol to do what you might call a tentative conversion. It will give you a pointer to the end of the data it could convert. If that's not the end of the string, you had at least some garbage following whatever it could convert.

If you're using C++, you probably want to use Boost lexical_cast, which will succeed if the entire input converted to the destination type, but throw an exception if any of it didn't convert.

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