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How can I validate the user input by using scanf. Right now I have something like this, but doesn't work.

NOTE: I have the atoi just to validate that the scanf validation works.

scanf("%[0987654321.-]s",buf);

i = atoi(buf);

if(i)
    index = i;
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6 Answers 6

up vote 14 down vote accepted

Using scanf() is usually a bad idea for user input since failure leaves the FILE pointer at an unknown position. That's because scanf stands for "scan formatted" and there is little more unformatted than user input.

I would suggest using fgets() to get a line in, followed by sscanf() on the string to actually check and process it.

This also allows you to check the string for those characters you desire (either via a loop or with a regular expression), something which the scanf family of functions is not really suited for.

By way of example, using scanf() with a "%d" or "%f" will stop at the first non-number character so won't catch trailing errors like "127hello", which will just give you 127. And using it with a non-bounded %s is just begging for a buffer overflow.

If you really must use the [] format specifier (in scanf or sscanf), I don't think it's meant to be followed by s.

And, for a robust input solution using that advice, see here. Once you have an input line as a string, you can sscanf to your hearts content.

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3  
+1: Good suggestion to use sscanf over scanf. Another problem with scanf (and sscanf) is that numbers that don't fit into the range of the conversion types cause undefined behavior and no way to check for error, it is usually better to use fgets and strtol/strtod. –  Robert Gamble Jan 19 '09 at 1:48
    
And if you do use the [] conversion specifier, please include a maximum field width to avoid buffer overflows! –  Robert Gamble Jan 19 '09 at 2:00
    
Scanf is a simple incarnation of evil. fscanf is worse. Pax and Robert have it right. Listen carefully to them. –  EvilTeach Jan 19 '09 at 2:28
    
-1 scanf does what it does, and is perfectly acceptable for that. If you can't read and understand the docs and expect it to do something else, then that may be a problem for you –  Chris Dodd Jun 14 '11 at 21:30
    
@Chris, it's not that scanf is unsuitable for what it does, it's that it's unsuitable for what people try to do with it. It's just not a robust user input solution. I'll choose to ignore the ad hominem comment at the end, by the way, I'm well aware of how the vast majority of C behaves, but thanks very much for your concern :-) –  paxdiablo Jun 15 '11 at 14:00

You seem to want to validate a string as input. It depends on whether you want to validate that your string contains a double or a int. The following checks for a double (leading and trailing whitespace is allowed).

bool is_double(char const* s) {
    int n;
    double d;
    return sscanf(s, "%lf %n", &d, &n) == 1 && !s[n];
}

sscanf will return the items converted (without '%n'). n will be set to the amount of the processed input characters. If all input was processed, s[n] will return the terminating 0 character. The space between the two format specifiers accounts for optional trailing whitespace.

The following checks for an int, same techniques used:

bool is_int(char const* s) {
    int n;
    int i;
    return sscanf(s, "%d %n", &i, &n) == 1 && !s[n];
}

There was a question on that here, which include also more C++'ish ways for doing this, like using string streams and functions from boost, like lexical_cast and so on. They should generally be preferred over functions like scanf, since it's very easy to forget to pass some '%' to scanf, or some address. scanf won't recognize that, but instead will do arbitrary things, while lexical_cast, for instance, will throw an exception if anything isn't right .

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My approach would be to read user input into string and then convert it to long using strtol(). strtol() returns pointer to the first character in input string it failed to process so by checking this character you'd know whether complete string was parsed, like this:

char *string;
char *endptr;
long result;

scanf("%as", string);
errno = 0;
result = strtol(string, &endptr, 10);
if (ERANGE == errno)
    printf("Input number doesn't fit into long\n");
else if (*endptr)
    printf("%s is not a valid long number - it contains invalid char %c\n",
        string, *endptr);
else
    printf("Got %ld\n", result);

In this snippet scanf() is instructed to automatically allocate string big enough using format modifier "a" (this is GNU extension). If you are not on GNU, allocate string manually and limit the max size in scanf() format.

This approach allows better error handling.

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What you specified in the first argument to scanf are conversion specifiers. scanf will try to convert the input to the format but sometimes you might be surprised what it will match against :)

The first check you should do is on the return value from scanf (it will give you the number of matching inputs). If you don't get the number you are expecting then you know that something is wrong with the input. In your case it should be 1.

if( scanf("%[0987654321.-]s", buf) == 1 )
{
      if( sanit_check( buf ) ) 
      {
      /* good input */
      }
      else
      {
      /* invalid input */
      }
}
else 
{
/* invalid input */
}

Beyond that you will need to do you own sanity checks on the conversion that you asked scanf to do.

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1  
I'd prefer the sequence: if (scanf() != 1) { error 1; } else if (!sanity_check()) { error 2: } else { use the good stuff }. It avoids diving off the right-hand side of the page, especially if there's another value to read after this one. –  Jonathan Leffler Jan 19 '09 at 2:49

If you're trying to read a number only, use:

int i;
scanf( "%d", &i );

If you need to do more complicated checking, you'll have to do it yourself. Scanf won't do it for you.

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"buf" needs to be a pointer. It looks like you are passing by value.

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It is an array, so "buf" is a pointer to the first element. –  Ed S. Jan 19 '09 at 1:45

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