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So, I have seen this strcpy implementation in C:

void strcpy1(char dest[], const char source[]) {
int i = 0;
   while (1) {
      dest[i] = source[i];
      if (dest[i] == '\0') break;
      i++;
} }

Which to me, it even copies the '\0' from source to destination.

And I have also seen this version:

// Move the assignment into the test
   void strcpy2(char dest[], const char source[]) {
int i = 0;
      while ((dest[i] = source[i]) != '\0') {
         i++;
} }

Which to me, it will break when trying to assign '\0' from source to dest.

What would be the correct option, copying '\0' or not?

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7  
Copying the null terminator is correct. Both versions do that. –  simonc Jan 23 '13 at 9:48
2  
When the while breaks on the \0, the copy has already been done by dest[i] = source[i]. –  pascal Jan 23 '13 at 9:49
    
@simonc - your comment would be a correct answer –  Kiril Kirov Jan 23 '13 at 9:49
    
'\0' indicates the end of string, it should be there, otherwise you'll not know where your string ends. –  Maroun Maroun Jan 23 '13 at 9:51

5 Answers 5

up vote 1 down vote accepted

Both copy the terminator, thus both are correct.

Note that strcpy2() does the assignment (the copying) first, then the comparison. So it will copy the terminator before realizing it did, and stopping.

Also, note that functions whose names start with str are reserved, so neither of these are actually valid as "user-level" code.

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So the last assignment of (dest[i] = source[i]) returns '\0'? I thought that assignments returned always "1" or true, if they were correct assigned. –  Hommer Smith Jan 23 '13 at 10:00
    
@Assignments evaluate to the value assigned. I'm not at all sure what you mean by "correct assigned". What would an example of an "incorrect assignment" be? I don't think that concept exists, in C. –  unwind Jan 23 '13 at 10:07
1  
Only names beginning with “str” and a lowercase letter are reserved, per C 2011 7.31.12 and .13. –  Eric Postpischil Jan 23 '13 at 11:33

You're wrong. Both copy the \0 (NUL terminator) character. You have to copy the NUL terminator character always or your string will be broken: you'll never know when/where it ends.

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Both strcpy1() and strcpy2() does the same. Both copy the NUL character to the end of the destination array.

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The code should look like as follows:

char * strcpy(char *strDest, const char *strSrc)
{
    assert(strDest!=NULL && strSrc!=NULL);
    char *temp = strDest;
    while(*strDest++ = *strSrc++); // or while((*strDest++=*strSrc++) != '\0');
    return temp;
}

You can NOT delete the second line char *temp = strDest; and directly return strDest. This will cause error for the returned content. For example, it will not return correct value (should be 22) will checking the length of returned char *.

char src_str[] = "C programming language";
char dst_str[100];
printf("dst_str: %d\n", strlen(strcpy(dst_str, src_str)));
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Both copy the '\0'. That's what you have to do if you want to fully emulate the original strcpy

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1  
Both copy the \0 –  m0skit0 Jan 23 '13 at 9:49
    
Just a mis-read. Sorry –  Davide Berra Jan 23 '13 at 9:54

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