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I need to define the characters in an array and print the string...But it always prints as string7 (in this case, test7)...What am I doing wrong here?

#include <stdio.h>
int main() {
    char a[]={'t','e','s','t'};
    printf("%s\n",a);
    return 0;
}
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3 Answers 3

up vote 13 down vote accepted

Why this behavior?

Because you did not \0 terminate your array, so what you get is Undefined behavior.

What possibly happens behind the scenes ?

The printf tries to print the string till it encounters a \0 and in your case the string was never \0 terminated so it prints randomly till it encounters a \0.
Note that reading beyond the bounds of allocated memory is Undefined behavior so technically this is a UB.

What you need to do to solve the problem?

You need:

char a[]={'t','e','s','t',`\0`};

or

char a[]="test";
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2  
Ah...Thank you. For some reason I thought that \0 was automatically appended to the end of a character array. –  rzrscm Jan 26 '13 at 5:18

Because your "string", or char[], is not null-terminated (i.e. terminated by \0).

then, printf("%s", a); will attempt to print every character starting from the start of a and keep printing until it sees until it sees a \0.

That \0 is outside your array, and depends on the initial state of the memory of your program, which you pretty much don't have control.

to fix this, use

char a[]={'t','e','s','t','\0'};
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The string you printing must be null terminated...so your string declaration should be,

char a[]={'t','e','s','t', '\0'};
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(Nit: If the object is not null-terminated then it is not a string.) –  user166390 Jan 26 '13 at 5:18
    
Nit's Nit: Not all strings must be null terminated, for example PStrings –  Scott Chamberlain Jan 26 '13 at 5:38

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