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Folks, need to search through a character array and replace any occurrence of '+','/',or'=' with '%2B','%2F', and '%2F' respectively

base64output variable looks like

FtCPpza+Z0FASDFvfgtoCZg5zRI=

code

char *signature = replace_char(base64output, "+", "%2B");
signature = replace_char(signature, "/", "%2F");
signature = replace_char(signature, "=", "%3B");

char replace_char (char *s, char find, char replace) {
    while (*s != 0) {
        if (*s == find)
        *s = replace;
        s++;
    }
    return s;
}

(Errors out with)

   s.c:266: warning: initialization makes pointer from integer without a cast

What am i doing wrong? Thanks!

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What is the type of base64output? –  Tony The Lion May 15 '13 at 19:15
4  
This won't work. You're trying to fit 3 characters into a single 'char', which is UB. –  Richard J. Ross III May 15 '13 at 19:27
    
@RichardJ.RossIII i see that! how should i write this then? –  Cmag May 15 '13 at 19:30
2  
Actually "+", "/", "=" are all const char *. As pointed out by RichardJ.RossIII '%2B' is not a character and maybe you need to pass it as string "%2B". So maybe your function should take in char *, const char *, const char*. Also you have to make sure that your target string has enough memory to accommodate replacement –  another.anon.coward May 15 '13 at 19:36
3  
No, it is just a suggestion, you can actually pass +, /, = as character '+', '/', '='. Maybe use char* replace(char *, const char, const char*) . What I am saying is that you should make sure that signature is large enough to accommodate change for eg, if signature="hello+test" after change it will be "hello%2Btest" which is 2 more chars than before. So your function logic can a) assume that input string has enough memory allocated or b) takes care of this memory allocation. It is up to you to decide –  another.anon.coward May 15 '13 at 19:46

5 Answers 5

If the issue is that you have garbage in your signature variable:

void replace_char(...) is incompatible with signature = replace_char(...)

Edit:

Oh I didn't see... This is not going to work since you're trying to replace a char by an array of chars with no memory allocation whatsoever.

You need to allocate a new memory chunk (malloc) big enough to hold the new string, then copy the source 's' to the destination, replacing 'c' by 'replace' when needed.

The prototype should be: char *replace_char(char *s, char c, char *replace);

share|improve this answer
    
.... how should i fix? :) –  Cmag May 15 '13 at 19:23
    
ah, char instead of void! –  Cmag May 15 '13 at 19:24
    
i've updated the code above, is this better? –  Cmag May 15 '13 at 19:46
    
Not only that, you also use strings (char*) as parameters when the method expects characters (char). –  Dirk May 15 '13 at 19:46
    
s.c:266: warning: initialization makes pointer from integer without a cast –  Cmag May 15 '13 at 19:50

your replace_char signature returns void

void replace_char (char *s, char find, char replace)

But, when the linker tries to resolve the following

signature = replace_char(signature, "=", '%3B');

It doesn't find any function that's called replace_char and returns int (int is the default if there's no prototype).

Change the replace_char function prototype to match the statement.

EDIT: The warning states that your function returns char, but you use it as a char * also, your function doesn't return anything, do you need to return something ? It looks like you don't really understand the code that you're working with. Fixing errors and warnings without understanding exactly what you need to do is worthless..

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s.c:266: warning: initialization makes pointer from integer without a cast –  Cmag May 15 '13 at 19:50
    
what's that supposed to mean ? –  stdcall May 15 '13 at 19:51
    
@Clustermagnet I edited my answer –  stdcall May 15 '13 at 19:54
    
yep, i see! so what should i be returning? –  Cmag May 15 '13 at 20:00
    
updated the code... still nothing –  Cmag May 15 '13 at 20:11

You could go for some length discussing various ways to do this.

Replacing a single char is simple - loop through, if match, replace old with new, etc.

The problem here is that the length of the "new" part is longer than the length of the old one.

One way would be to determine the length of the new string (by counting chars), and either (1) try to do it in place, or (2) allocate a new string.

Here's an idea for #1:

int replace(char *buffer, size_t size, char old, const char *newstring)
{
   size_t newlen = strlen(newstring);
   char *p, *q;
   size_t targetlen = 0;

   // First get the final length
   //
   p = buffer;
   while (*p)
   {
      if (*p == old)
         targetlen += newlen;
      else
         targetlen++;
      ++p;
   }

   // Account for null terminator
   //
   targetlen++;

   // Make sure there's enough space
   //
   if (targetlen > size)
      return -1;

   // Now we copy characters.  We'll start at the end and
   // work our way backwards.
   //
   p = buffer + strlen(buffer);
   q = buffer + targetlen;

   while (targetlen)
   {
      if (*p == old)
      {
         q -= newlen;
         memcpy(q, newstring, newlen);
         targetlen -= newlen;
         --p;
      }
      else
      {
         *--q = *p--;
         --targetlen;
      }
   }

   return 0;
}

Then you could use it this way (here's a quick test I did):

char buf[4096] = "hello world";

if (replace(buf, sizeof(buf), 'o', "oooo"))
{
   fprintf(stderr, "Not enough space\n");
}
else
{
   puts(buf);
}
share|improve this answer
    
uhm.... why int replace, and not char replace? –  Cmag May 15 '13 at 20:20
    
error: conflicting types for ‘replace’ –  Cmag May 15 '13 at 20:29
    
@Clustermagnet - 1. It returns int which is 0 on success, nonzero on error. As you learn C more you will see this is a common pattern. 2. I'm going to guess you pasted this into somewhere where replace was already defined. –  asveikau May 16 '13 at 1:09

1.

  • for char use '' single quotes

  • for char* use "" double quotes

2.

  • The function does include the return keyword, therefore it does not return what you'd expect

3.

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fix like this

#include <stdio.h>
#include <stdlib.h>
#include <string.h>

char *replace_char (char *str, char find, char *replace) {
    char *ret=str;
    char *wk, *s;

    wk = s = strdup(str);

    while (*s != 0) {
        if (*s == find){
            while(*replace)
                *str++ = *replace++;
            ++s;
        } else
            *str++ = *s++;
    }
    *str = '\0';
    free(wk);
    return ret;
}

int main(void){
    char base64output[4096] = "FtCPpza+Z0FASDFvfgtoCZg5zRI=";
    char *signature = replace_char(base64output, '+', "%2B");
    signature = replace_char(signature, '/', "%2F");
    signature = replace_char(signature, '=', "%3B");
    printf("%s\n", base64output);

    return 0;
}
share|improve this answer
1  
This solution assumes the source has enough space. –  asveikau May 16 '13 at 2:53
1  
@asveikau That's correct. It has been assumed in the original code. –  BLUEPIXY May 16 '13 at 7:51
    
awesome! thanks! Now, question, what if i needed to increase the base64output variable, since im replacing single characters with tripple characters –  Cmag May 16 '13 at 14:52
    
Change it to use the area secured by the securing region using the malloc, etc. If it appears that the output region is lacking. Do you would prepare three times maximum number of characters that are assumed in the input, and then calculate the required area by counting the number of blank if you want to reserve in advance. –  BLUEPIXY May 16 '13 at 15:08
    
The reason I point it out is that it's not a good habit to teach people that they can write C code disregarding buffer sizes. –  asveikau May 17 '13 at 5:36

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