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This is my c code:

#include <stdio.h>


int main(){

int x[] = {6,1,2,3,4,5};
int *p=0;
p =&x[0];


while(*p!='\0'){

    printf("%d",*p);
    p++;
}

return 0;


}

When run the output is 612345-448304448336

What are the digits after the minus sign and why is my code giving this?

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3 Answers

up vote 2 down vote accepted

The condition *p != '\0', which is the same as *p != 0, is never met because your array doesn't contain an element of value 0, and thus you overrun the array bounds and step into undefined behaviour.

Instead, you should control the array range directly:

for (int const * p = x; p != x + sizeof(x)/sizeof(x[0]); ++p)  // or "p != x + 6"
{
    printf("%d", *p);
}
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You run the loop till you encounter a \0 but your array was never \0 terminated.

int x[] = {6,1,2,3,4,5};

creates an array which is not \0 terminated. You will have to explicitly add a \0 as the last element.

Since the array is not \0 terminated the while() loops run until a random \0 is encountered. Technically, this is Undefined Behavior because you are reading the contents of memory which is not allocated to your variable.

Suggested Solution:

int x[] = {6,1,2,3,4,5,0};

while(*p != 0)
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Arrays in C are not Null Terminated. Which is why your loop goes beyond the end of your declared array. The digits follows 5 are just whatever happens to be in that memory space. If there hadn't been a null character following your allocation of the array the loop would have continued running until it made a SegFault.

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char arrays are null-terminated. –  Niklas B. Mar 10 '12 at 17:10
    
@NiklasB. Only if you specifically null terminate them by declaring them with "contents" or add a \0 to the end. If you declare char[10] there is no guarantee that char[9] or char[10] are null characters. Replace int x[] with char x[] and you'll see. –  RussS Mar 10 '12 at 17:21
    
@Niklas B.: No, strings are. –  DarkDust Mar 10 '12 at 17:22
    
@RussS: Sorry, yes, I meant char[] literals (strings). –  Niklas B. Mar 10 '12 at 17:24
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