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Im trying to read an input in the format (int,int) in which there could be N white spaces between the beggining and the 1st ( , ( and the 1st int, between the 1st int and the comma and so on till the end where could also be N white spaces between ) and the end of input.

ex: $ _( int, int )___ . read _ as whitespace.

So far i had this but it is not working:

scanf("%*[](%*[]%d%*[],%*[]%d%*[])%*[])")

where my %*[] would be used to ignore white spaces.

Could anybody help me?

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2  
If you want a parser, write a parser. –  Carl Norum Oct 23 '13 at 21:50
    
Regular expressions would be more suited to this. –  paddy Oct 23 '13 at 21:51
1  
Using scanf is a requirement of this problem. –  Daniel Vilas-Boas Oct 23 '13 at 21:55
    
Are you just trying to parse the two ints or the stuff around them as well? –  n0741337 Oct 23 '13 at 21:59
2  
Did you try scanf("$ ( %d, %d ) ", ... ? scanf is pretty happy to skip over whitespace. –  Charlie Burns Oct 23 '13 at 22:20

3 Answers 3

Try this: scanf("%*[ ](%*[ ]%d%*[ ],%*[ ]%d%*[ ])%*[ ]",&a,&b); where a and b are the two integers. In your question the part with integer variables is missing.

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scanf() and sscanf() want to skip white spaces in general. One white space in the formatting is enough to specify it. Because you only care about the two ints, you don't need to give scanf() any information about what's after the second int. If it's acceptable, just start looking at line from the whitespace just past the first ( and then up to the last int. Here's an example using some 'pointer magic' where line is a char buffer and isn't testing to see if there's anything at ptr+1:

char *ptr = 0;
int x = 0, y = 0, n = 0;

for( ptr = line; *ptr; p++ )
    if( *ptr == '(' ) break;
n = sscanf( ptr+1, " %d, %d", &x, &y );

n will contain the number of fields assigned (which should be two in this case) and x and y are the two ints you're interested in.

Similary, to use scanf(), you can catch and throw away the first part:

n = scanf( "%s ( %d, %d", garbage, &x, &y );

where garbage is a char buffer that's big enough which you never have to look at. n would be 3 in this case.

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Given the format $ _( int, int )___ . where _ is an arbitrary amount of whitespace use

int n = 0;
int result = scanf("$ (%d,%d ) .%n", &int1, &int2);
if ((result != 2) || (n == 0)) {
  ; // failed, handle error.
}

Let's break the scanf() format down

"$" match a '$'
" " match 0 to unlimited number of whitespace.
"(" match '('
"%d" match any amount of leading whitespace, then look for an int, storing in the corresponding int *.
"," match ','
")" match ')'
"." match '.'
"%n" Save the number of char parsed so far into the corresponding int *. Acting on this directive does not affect the scanf() result.

Liberal use of %n could be intersperse should more specific scanning be require than suggested in this solution.

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