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Suppose I want to input a square of integers. On each line, each pair of integers is separated by a space. So the following code works just fine :

//size of the square
int N;
scanf("%d",&N);
int **c;
c = malloc(N*sizeof(int*));

for (i=0;i<N;i++)
{   c[i] = malloc(2*sizeof(int));
    for (j=0;j<2;j++)
    {scanf("%d",&c[i][j]);}
}

So here I don't understand why space are not taken into account (so why it is working :-)) ? On the contrary, if I used a n array c[N][N], it wouldn't have worked, because each space would have been interpreted as an input of the array

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You can write as many numbers on a line as you like from 0 to N*N and scanf won't care; it looks for white space (including newlines) followed by digits. Of course, a non-digit locks the whole thing up; you should test that scanf() works fully each time you call it: if (scanf("%d", &c[i][j]) != 1) { ...process error... }. Consider the merits of using fgets() to read a line and sscanf() to parse it; error reporting is a lot easier! –  Jonathan Leffler Aug 29 '12 at 15:53
    
It appears that your code is reading an N row x 2 column matrix, not a square matrix. Unless you're stuck with a C89 compiler (or a C11 compiler that predefines __STDC_NO_VLA__), you would be able to write: int c[N][2]; in place of int **c;, and you would not then need the malloc() statements (assuming you only use the matrix in this function, or in functions called from this function). If you want to pass the matrix back to the calling code, you get into some interesting issues. –  Jonathan Leffler Aug 29 '12 at 23:05

2 Answers 2

up vote 1 down vote accepted
int N;
scanf("%d",&N);
int c[N][N];   /* Error */

The size of c[][] must be known when it is created. That means that N cannot be obtained dynamically from input.

Edit: As pointed out by Jonathan Leffler, some compilers support array size being determined at run-time. It was part of the C99 standard, but in the subsequent C11 standard it was made optional.

While optional features may be great, they reduce the portability of your program.

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This is not true in C99. It is also not true when c is an int ** as in the code in the question. This answer should not be the selected one. –  Jonathan Leffler Aug 29 '12 at 15:54
    
Perhaps you didn't understand the question? –  Klas Lindbäck Aug 29 '12 at 22:32
    
Maybe I don't understand the question, but the statement that 'int c[N][N];` would not work is inaccurate for modern C compilers (those that support the old version of the standard, C99, or the new version of the standard, C11 — subject to __STDC_NO_VLA__ not being predefined). Only archaic C compilers that are either pre-standard or that only support C89 that won't accpet int c[N][N];, with N being determined at run-time. This is a VLA; it is standard C. Therefore, your comment is incomplete, though it may be accurate for the OP's C compiler (which is not identified, but might be MSVC). –  Jonathan Leffler Aug 29 '12 at 22:56
    
Point taken. I've added an edit to the answer. –  Klas Lindbäck Aug 30 '12 at 6:46

Well, basically, each invocation of scanf is going to be white-space delimited.

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yes but why declaring instead c[N][N], and then "scanf("%d",&c[i][j]);" wouldn't have worked ? –  user1611830 Aug 29 '12 at 14:20
    
1) did you malloc c[i] = malloc(N*sizeof(int)) instead of 2? 2) did the user actually input n items into the row? You don't have any error handling so I pretty much need to see the test input as well. –  djechlin Aug 29 '12 at 14:22

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