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In C [not C++]:

How can I copy a const char* into a string (char array)?

I have:

const char *d="/home/aemara/move/folder"
char tar[80] ;
int dl=strlen(d);
int x=0;
while (x<dl){tar[x]=d[x]; x++; }
printf("tar[80]: %s\n",tar);

Prints out: tar[80]: /home/aemara/move/folderøèB The problem is that this way, adds garbage at the end of the array [sometimes, not always] How can I fix it ? or there is another way to copy const char* into a string ?

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1  
Why not strcpy()? –  Greg Hewgill Oct 21 '12 at 18:41
    
@GregHewgill he probably wants to learn how to copy two strings. Probably homework –  Aniket Oct 21 '12 at 18:47
    
@PrototypeStark: I certainly understand the idea of exercises for learning, but if that were the case then why would strlen() be permitted? Also, I don't assume random restrictions unless explicitly specified. –  Greg Hewgill Oct 21 '12 at 18:52

4 Answers 4

up vote 0 down vote accepted

This is what you should do:

const char *d="/home/aemara/move/folder";//Semi-colon was missing in your posted code
char tar[80];
memset(tar,0x00,80);//This always a best practice to memset any array before use
int dl=strlen(d);//This returns length of the string in excluding the '\0' in the string
int x=0;
if(dl<79)// Check for possible overflow, 79th byte reserved=1 byte for '\0'
while (x<dl){ tar[x]=d[x]; x++; }
if(x<80) d[x]=0;//If not using memset have to use this, xth byte initialized to '\0'
printf("\ntar[80]: %s\n",tar);
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"This always a best practice to memset any array before use". No it's not. That is defensive programming and may simply mask other logic errors. While there are some cases where clearing the array as the first step is appropriate, in most cases it should be unnecessary. –  Clyde Feb 15 '13 at 20:59
    
The comment was w.r.to the OP's question and context. And I do agree, with your comments, too. –  askmish Feb 16 '13 at 9:56

strlen returns the length without the null terminator. You need to copy one more byte.

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THANKS A LOT :) –  CS student Oct 21 '12 at 18:47

You forgot to add a '\0' character at the end after copying.

To solve this, memset(tar,'\0',80);

Or :

if(d1 < 80){ //bad idea, don't use magic numbers
  while(x < d1){ tar[x] = d[x]; x++;}
  tar[x] = '\0';
}
printf..
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strlen's return value doesn't include the NULL terminator.

Add the following line after the while loop

tar[dl] = '\0';

Or you could zero initialize tar when you declare the array.

char tar[80] = {0};

Now you don't need to NULL terminate after the loop.

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