Difference between strncpy and memcpy?

Question

How can i access s[7] in s?

I didn't observe any difference between strncpy and memcpy. If I want to print the output s, along with s[7] (like qwertyA), what are the changes I have to made in the following code:

#include <stdio.h>
#include <stdlib.h>
int main()
{
    char s[10] = "qwerty", str[10], str1[10];
    s[7] = 'A';
    printf("%s\n",s);
    strncpy(str,s,8);
    printf("%s\n",str);
    memcpy(str1,s,8);
    printf("%s\n",str1);
    return 0;
}
/*
O/P
qwerty
qwerty
qwerty
*/

Answer 1

You are getting the output querty because the index 7 is incorrect (arrays are indexed from 0, not 1). There is a null-terminator at index 6 to signal the end of the string, and whatever comes after it will have no effect.

Two things you need to fix:

1. Change the 7 in s[7] to 6
2. Add a null-terminator at s[7]

The result will be:

char s[10] = "qwerty";
s[6] = 'A';
s[7] = 0;

Original not working and fixed working.

As for the question of strncpy versus memcpy, the difference is that strncpy adds a null-terminator for you. BUT, only if the source string has one before n. So strncpy is what you want to use here, but be very careful of the big BUT.

Answer 2

Others have pointed out your null-termination problems. You need to understand null-termination before you understand the difference between memcpy and strncpy.

The difference is that memcpy will copy all N characters you ask for, while strncpy will copy up to the first null terminator inclusive, or N characters, whichever is fewer. (If it copies less than N characters, it will pad the rest out with null characters.)

Answer 3

To make "qwertyA" you need to set s[6] = 'A' and s[7]='\0'

Strings are indexed from 0, so s[0] == 'q', and they need to be null terminated.

Answer 4

When you have:

char s[10] = "qwerty";

this is what that array contains:

s[0]  'q'
s[1]  'w'
s[2]  'e'
s[3]  'r'
s[4]  't'
s[5]  'y'
s[6]   0
s[7]   0
s[8]   0
s[9]   0

If you want to add an 'A' to the end of your string, that's at index 6, since array indexes start at 0

 s[6] = 'A';

Note that when you initialize an array this way, the remaining space is set to 0 (a nul terminator), While not needed in this case, generally be aware that you need to make your strings nul terminated. e.g.

char s[10];
strcpy(s,"qwerty");
s[6] = 'A';
s[7] = 0;

In the above example "qwerty" , including its nul terminator is copied to s. s[6] overwrites that nul terminator. Since the rest of s is not initialized we need to add a nul terminator ourselves with s[7] = 0;

Answer 5

Strncpy will copy up to NULL even you specified the number of bytes to copy , but memcpy will copy up to specified number of bytes .

printf statement will print up to NULL , so you will try to print a single charater , it will show ,

printf("\t%c %c %c\t",s[7],str[7],str1[7]);

OUTPUT

  7              7

Answer 6

strncpy adds the \0 char to the target char array, memcpy does not do that.

Also strncpy will stop copying if it encounters a \0 in the source string which memcpy will not.

The later might not be to important but potentialy, the extra "garbage" that memcpy would copy could contain residual information that the target function should NOT hav access to, left over password for example and using memcpy could possibly be a security risk there even if unlikely.