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I have a string:

str1 = "abcabcabc";

How can I remove the first character? I would like the end result to be:

str1 = "bcabcabc";
share|improve this question
2  
It will be good if you show what you have written so far and ask for how to proceed from where you are stuck. – vpit3833 Apr 19 '11 at 4:10
1  
what is the problem you're facing ! – ta-run Apr 19 '11 at 4:11
    
i'm going to write a recursive function to do this – hkvega Apr 19 '11 at 4:12
1  
<s>Is string a typedef char *string; or are you using C++? I'm pretty sure string doesn't come with the language (C).</s> Ah I see what went wrong: the edits. – Mateen Ulhaq Apr 19 '11 at 4:13
1  
@hkvega That's definitely not necessary. – Mateen Ulhaq Apr 19 '11 at 4:17
up vote 13 down vote accepted

If you have a character pointer to a string like:

char *s = "This is my string";

then you can just do s++.

If you have a character array, your best bet may be to have a pointer to that array as well:

char s[] = "This is my string";
char *ps = s;

then you can do ps++ and make sure you use ps rather than s.

If you don't want to have a separate pointer to your array then you can use memmove to copy the data:

memmove (s, s+1, strlen (s+1) + 1); // or just strlen (s)

though none of those will work for an initially empty string so you'll have to check that first.

Another solution is to simply code up a loop:

for (char *ps = s; *ps != '\0'; ps++)
    *ps = *(ps+1);
*ps = '\0';

This will work for all strings, empty or otherwise.

share|improve this answer
    
Thanks to you, half of my nerves have been ripped out. :) – Mateen Ulhaq Apr 19 '11 at 6:09
2  
Just one comment. Keep the original pointer if the space for the string is malloc'ed, otherwise there won't be a way to free that space. If the space was hard-coded, then of course no problem. +1 on the recursive beast. :-) – Stephen Chung Apr 19 '11 at 7:11
    
Not exactly sure at the moment... but shouldn't memmove (s, s+1, strlen (s+1)); be memmove (s, s+1, strlen (s-1));? – mozzbozz Jun 16 '15 at 11:57
1  
@mozzbozz, no, you may be thinking of strlen (s) - 1 which would be correct, equivalent to strlen (s + 1) except for the degenerate case where s[0] == 0. The expression strlen (s - 1) is not the same thing. – paxdiablo Jun 16 '15 at 13:06
1  
@mozzbozz: however, your comment led me to a flaw where I didn't copy the final NUL, so thanks for that, I've fixed it. – paxdiablo Jun 16 '15 at 13:26

Here is one way to do it:

int index = 0; //index to cull
memmove( &word[ index ] , &word[ index +1], strlen( word ) - index) ;
share|improve this answer

Try:

char str1[] = "abcabcabc";
char *pstr1;
pstr1 = &(str1[1]);

Bad practice, but since it's reserved on the stack, it shouldn't kill ya. Now, if you showed us your code...


You could use strcpy:

char str1[] = "abcabcabc";
char str2[sizeof(str1)-1];

if(strlen(str1) > 0)
{
    strcpy(str2, &(str1[1]));
}
else
{
    strcpy(str2, str1);
}

// str2 = "bcabcabc";

For C++, you just use std::string::substr:

std::string str1 = "abcabcabc";
std::string str2 = str1.substr(1, str1.length() - 1);
// str2 = "bcabcabc";
share|improve this answer
    
This suffers from three flaws (one per section). (1) You cannot increment a character array, only a pointer. (2) This one creates a new string, though that's probably fixable by copying back to the original afterwards. (3) Your C++ solution is probably right (I can't comment on that) but it's hardly useful for a C question :-) – paxdiablo Apr 19 '11 at 4:50
    
@paxdiablo (1) I fixed it, then unfixed it because I couldn't remember why I fixed it. :) (2) Does it look OK now? (3) Yeah, I like C++. :) – Mateen Ulhaq Apr 19 '11 at 5:21
    
that whole 3-line if bit could be replaced with strcpy(str2, &(str1[1]));, no pstr1 required, and the sizeof (in the if) should probably be strlen. – paxdiablo Apr 19 '11 at 5:25
    
@paxdiablo Ah yes, thanks. – Mateen Ulhaq Apr 19 '11 at 5:27

If you really meant to say

char str1 [] = "abcabcabc";

Then the easiest thing is

str1 = &str1[1];

If you want to modify the actual data, then you have to just move everything up one position. You can use a loop for that or memmove(). A recursive function is overkill.

If you really meant C++ and you're using the string object then you can use

str1 = str1.substr(1);
share|improve this answer
    
str1 = &str1[1]; I dont think, that line will work. – Shreesh Apr 19 '11 at 4:31
    
@Shreesh Why not? An array decays into a pointer. – Mateen Ulhaq Apr 19 '11 at 4:37
    
The problem is not in the decaying (which does happen), the problem is in trying to asign to a non-pointer. – paxdiablo Apr 19 '11 at 4:40
    
It works if the str1 is declared as char* str1. You're right, if you declare char str1[] then it won't work. But it's not clear what the OP is using. – Adam Apr 19 '11 at 4:42
    
@Adam What happens if &str1 is passed to a function that expects char ** and is incremented there? Does it cause a crash when str1 goes out of scope? – dashesy May 19 '12 at 18:02

Well as far as i know if you are worried about memory allocation you have to copy (str1+1) into a new string that you personally allocate memory for, then free the first pointer. The really simple way to do it would be to just increment str1 with str1++; That would make it point one character farther than it used to and give you the desired result with just a line of code.

share|improve this answer
#include <stdio.h>
#include <conio.h>
main(){
   char a[10];
   int i;
   gets(a);

   for (i = 0; a[i] != '\0'; i++) {
      a[i] = a[i + 1];
   }

   printf("\n");
   puts(a);
   getch();
}
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