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I am confused with one tiny program.

#include <stdio.h>

#define LEN 10

int main()
{
    char str1[LEN] = "\0";
    char str2[LEN] = "\0";

    scanf("%s", str1);
    scanf("%s", str2);

    printf("%s\n", str1);
    printf("%s\n", str2);

    return 0;
}

If my input are:

mangobatao
mangobatao123456

Why should the output be:

123456
mangobatao123456

And not:

mangobatao
mangobatao123456

How has the char array has been allocated in the memory?

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scanf("%s", str) is inherently unsafe, unless you have complete control over what will appear on stdin. However big str is, the user can type more characters than will fit into it, causing undefined behavior. (Undefined behavior will crash your program only if you're lucky.) –  Keith Thompson Sep 1 '11 at 23:04
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2 Answers

I think your compiler has allocated space for str2[10] just 10 characters before the str1 pointer.

Now, when you scanf a string of length 16 at str2, the string terminator '\0' is appended at str2 + 17th position, which is infact str1 + 7.

Now when you call printf at str1, the characters read are actually str2 + 11, str2 + 12,..., str2 + 16 until the null terminator is encountered at str2 + 17 (or str1 + 7). The printf at str2 must be obvious.

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Well, a 10 character char array won't fit "mangobatao", since it has 10 characters - there's no room for the null terminator. That means you've caused undefined behaviour, so anything could happen.

In this case, it looks like your compiler has laid out str2 before str1 in memory, so when you call scanf to fill str2, the longer string overwrites the beginning of str1. That's why you see the end of what you think should be in str2 when trying to print str1. Your example will work fine if you use a length of 100.

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