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I'm a c beginner and i've a problem (as usual). I wrote this simple program:

 #include <stdio.h>
 #define SIZE 10

 main()
 {
    int vettore[9];
    int contatore1,contatore2;

    for(contatore1 = 0; contatore1 <= 9; ++contatore1)
    {
        vettore[contatore1] = contatore1*2;
    }

    printf("%d\n\n", vettore[9]);

    for(contatore2 = 0; contatore2 < 10; ++contatore2)
    {
        printf("%d\n", vettore[contatore2]);
    }

    printf("\n%d\n", vettore[9]);

    return 0;
}

The output of this program is:

18

0
2
4
6
8
10
12
14
16
9

10

Why the value of vettore[9] changes 3 times? And why it has the correct value only on the first line of the output? thank you :)

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1  
Btw, you should follow 1 style - <Size or <=LastIndex, using both is going to be confusing. –  Karthik T Jan 31 '13 at 9:18
1  
I would advise to use the name "array" rather than vector. Strictly speaking, vector is a correct term, but in C programming it more oftens refers either to mathematical vectors or the C++ type std::vector. –  Lundin Jan 31 '13 at 9:28
    
Also you should at least read C bible before asking basic questions here. No flaming, just for your own good. –  KBart Jan 31 '13 at 9:30
    
Indeed. The correct term in the C language is 'array'. You should use this term to avoid confusion. –  paddy Jan 31 '13 at 9:38

3 Answers 3

up vote 1 down vote accepted

Your array vettore has 9 elements, but by referencing vettore[9], you're actually referencing the 10th element (since element indexing starts from 0). So it's some random location on the stack, without a well-defined value.

The solution is to index only up to vettore[8], or define vettore to have size 10.

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ive just done a stupid question. I should read my manual with more attention before posting. Thanks to all! –  JoulinRouge Jan 31 '13 at 9:28

C arrays are zero based so valid indexes for a 9 element array are [0..8]. You are writing beyond the end of your array. This has undefined results but is likely corrupting the next stack variable.

In more detail... vettore has 9 elements, which can be accessed using vettore[0] ... vettore[8]. The final iteration of your first loop writes to vettore[9]. This accesses memory beyond the end of your array. This results in undefined behaviour (i.e. the C standard does not specify expected outcome here) but it is likely that the address of vettore[9] is the same as the address of contatore2, meaning that the latter variable is written to.

You have a similar problem in the next loop which prints more elements than vettore contains.

You can fix this by changing your loops to

for(contatore1 = 0; contatore1 < 9; ++contatore1)
for(contatore2 = 0; contatore2 < 9; ++contatore2)

Note that it would be safer if you changed to calculating the size of the array instead, by using sizeof(vettore)/sizeof(vettore[0]) in the exit test of your loops in place of hard-coding 9.

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1  
Looks more like the address of vettore[9] is the same as the address of contatore2. It accepts the first write and reads as 18, then during the second loop it reads as 9 as that is the value of contatore2 at that point. After the loop contatore2 is 10 and thats what vettore[9] prints. You should not rely not this behaviour though!! –  Grhm Jan 31 '13 at 9:31

the vettore size as you defined is 9

int vettore[9];

and in your loop you start from 0 till 9 so you are playing with 10 elements of the array and not 9 (size of the array)

you should define the array with size 10

int vettore[10];
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