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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
*/
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Try swapping memcpy and strncpy in your above code. Then experience the difference. – Linus Kleen Jan 4 '11 at 13:09

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.)

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3  
There's another difference as well, strncpy will fill the rest of the space with 0. e.g. if you do strncpy(a,b,255); and a is 10 long, strncpy will copy those 10 characters and fill the remaining 240 characters with 0. – nos Jan 4 '11 at 13:38
    
@nos: I realized that before you did, and edited it in. But thanks anyway :) – Philip Potter Jan 4 '11 at 13:44

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.

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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.

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I should not change s[7] to s[6]. If we set s[6] as 'A' then we will get the desired output.. – user559208 Jan 4 '11 at 13:15
3  
@user so you're saying you don't want the desired output? O_o – Philip Potter Jan 4 '11 at 13:17
    
@user559208: when marcog wrote "change s[6] to s[7]" I think he actually meant instead of writing s[7], write s[6]. Also, don't forget the null termination of the string (setting s[7] to 0 or '\0') because that will help prevent overrun bugs from creeping in. – Matt Ellen Jan 4 '11 at 13:53
    
You might be right about the confusion there. I've attempted to make the wording clearer. – marcog Jan 4 '11 at 14:07
    
@marcog: That's clearer now. Also, sorry for the minor misquote! – Matt Ellen Jan 4 '11 at 14:12

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;

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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
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