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  1 #include<stdio.h>
  2 #include<string.h>
  3 
  4 int main(void)
  5 {
  6         char p[] = "I'm shia";
  7         printf("%p\n",p);
  8         printf("%d\n",memrchr(p+3,'s',strlen(p)));
  9         printf("%p\n",memchr(p,'i',strlen(p)));
 10         return 0;
 11 }

Output:

0x7fff0eeae950
0xeeae954  /*garbage value?*/
0x7fff0eeae956

why does memrchr return the value exceed the boundary of array p ,memchr worked fine.
If such action is deliberate,why?

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3  
Are you deliberately using %d instead of %p in your line 8? –  Amadan Dec 26 '12 at 3:57
    
What is the +3 for? –  Potatoswatter Dec 26 '12 at 3:59
    
@Amadan Yes,When I use %p it will generate waning by gcc –  yuan Dec 26 '12 at 4:13
    
@ZhangYuan typecast return type of memrchr to (void *) to avoid warning about %p –  Manav Dec 26 '12 at 6:40
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2 Answers

up vote 4 down vote accepted

The problem is not memrchr vs memchr. You are calling it like this:

memrchr(p+3,'s',strlen(p));

which says search for 's' in the string that starts at p+3 and is strlen(p) characters long. So memrchr is doing what you have asked for, and its looking at the null-terminator and the two other values outside of your string. You should instead call it like this:

memrchr(p+3,'s',strlen(p+3));

or even:

memrchr(p+3,'s',strlen(p)-3);
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strlen(p+3) is not correct as it causes buffer overflows. Always use strlen(p)-3 –  Manav Dec 26 '12 at 6:42
    
@Manav: How would it cause a buffer overflow? strlen(p+3) is fine as long as the string has at least 3 chars, but otherwise both calls would be wrong –  K-ballo Dec 26 '12 at 6:45
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Made a couple of changes, but this not code you want to use in production. It is okay to see how memrchr works.

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

 int main(void)
 {
         char p[] = "I'm shia";
         printf("%p\n",p);
         printf("%s\n",(char *)memrchr(p+3,'s',strlen(p) - 3));
         printf("%p\n", memchr(p,'i',strlen(p)));
         return 0;
 }

Output on my cygwin 1.7:

$ ./memrchr
0x28ac57
shia
0x28ac5d
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