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I cannot use the xstrcpy to copy and print and it prints a blank line when i try to print the whole string in main though in the while loop each character is printed...but not the string immediately below the while loop...Don't know why this is happening:(

Code:

#include<stdio.h>
#include<stdlib.h>
int xstrlen(char *);
char * xstrcpy(char *,char *);
main()
{
    char *expptr1="Hello World";
    char *expptr2 = "Hello Again";
    char *expptr3;
    printf("%d\n",xstrlen(expptr1));
    expptr3 = xstrcpy(expptr1,expptr2);
    printf("%s\n",expptr3);
}

int xstrlen(char *ptr)
{
    //printf("I am here\n");
    int count = 0;
    while(*ptr++!='\0')
        count++;
    return count;
}

char * xstrcpy(char *ptr1,char *ptr2)
{
    int i=xstrlen(ptr2);
    printf("%s\n",ptr1);
    printf("%s\n",ptr2);
    ptr1 =(char *)malloc(i);
    //printf("i am here\n");
    while(*ptr2 != '\0')
    {
        *ptr1 = *ptr2;
        printf("%c\n",*ptr1);
        ptr1++;
        ptr2++;
    }
    printf("%s",ptr1);
    return ptr1;
}

Output:

11
Hello World
Hello Again
H
e
l
l
o

A
g
a
i
n
ׁׁ

Exited: ExitFailure 4
share|improve this question
    
Please post your code in the question next time. – Carl Norum May 11 '11 at 18:15
up vote 4 down vote accepted

You have changed the pointer address of ptr1 as you copied the string. So by the time you print out ptr1, it is actually pointing to the end of the string which is some garbage value.

So what you need to do is to keep the ptr1 in the beginning of xstrcpy and return that start address and that will correctly print out the ptr1, I think.

share|improve this answer
    
got it now...thanks a tonne..!!! – phoenix May 11 '11 at 18:18
1  
There's going to be a '\0' missing from the end, too. – James May 11 '11 at 18:19
    
The ideal way to do it would be to declare another pointer ptr3 where i can store the address of ptr1 initially and then return ptr3...what say guys??? – phoenix May 11 '11 at 18:28

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