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I am brushing up my C skills.I tried the following code for learning the usage of itoa() function:

#include<stdio.h>
#include<stdlib.h>

void main(){

    int x = 9;
    char str[] = "ankush";
    char c[] = "";

    printf("%s printed on line  %d\n",str,__LINE__);
    itoa(x,c,10);
    printf(c);
    printf("\n %s \n",str); //this statement is printing nothing
    printf("the current line is %d",__LINE__);
}

and i got the following output:

ankush printed on line 10
9
                      //here nothing is printed
the current line is 14

The thing is that if i comment the statement itoa(x,c,10); from the code i get the above mentioned statement printed and got the following output:

ankush printed on 10 line

 ankush   //so i got it printed
the current line is 14

Is this a behavior of itoa() or i am doing something wrong. Regards.

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2  
Your itoa call is writing into a buffer that's too small; there must be enough room for the target string AND the null terminator. You're likely stomping on your other string in memory by overrunning on the itoa call. – Joe Apr 6 '14 at 18:27
    
itoa is writing to c, which can only store strings of length 0... – Oliver Charlesworth Apr 6 '14 at 18:27
    
@Joe , i increased the size of c and problems vanished. – black-perl Apr 6 '14 at 18:33
up vote 1 down vote accepted

As folks pointed out in the comments, the size of the array represented by the variable c is 1. Since C requires strings have a NULL terminator, you can only store a string of length 0 in c. However, when you call itoa, it has no idea that the buffer you're handing it is only 1 character long, so it will happily keep writing out digits into memory after c (which is likely to be memory that contains str).

To fix this, declare c to be of a size large enough to handle the string you plan to put into it, plus 1 for the NULL terminator. The largest value a 32-bit int can hold is 10 digits long, so you can use char c[11].

To further explain the memory overwriting situation above, let's consider that c and str are allocated in contiguous regions on the stack (since they are local variables). So c might occupy memory address 1000 (because it is a zero character string plus a NULL terminator), and str would occupy memory address 1001 through 1008 (because it has 6 characters, plus the NULL terminator). When you try to write the string "9" into c, the digit 9 is put into memory address 1000 and the NULL terminator is put in memory address 1001. Since 1001 is the first address of str, str now represents a zero-length string (NULL terminator before any other characters). That's why you are getting the blank.

share|improve this answer
    
Great answer, quite informative. – black-perl Apr 6 '14 at 18:40
    
Hey, `str' should occupy memory address 1001 through 1007. – black-perl Apr 6 '14 at 18:52

c must be a buffer long enough to hold your number.

Write

char c[20] ;

instead of

char c[] = "";
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