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I am trying to compare two const char* code is given below.

void compare(const char *name){
             const char *name1;

             if(!strcmp(*name,*name1){
                  printf("true");
             }
}

error is : invalid conversion from 'char' to 'const char *' I need help.

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3 Answers 3

if(!strcmp(name,name1))

-- your variables name and name1 already are pointers.

However, that alone will not magically make it work. Why are you comparing against an uninitialized value for name1?

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1  
Added a second ')' after the strcmp. Count your parentheses! –  Jongware Jul 21 '13 at 1:03
    
Thank you very much name1 is a const char * in a structure :-) Thank you again. –  Darshit Dave Jul 21 '13 at 1:08
    
You say that name and name1 are already pointers, which may imply that * gives a pointer to a variable, which it doesn't. & gives the address. In this regard, Joni's answer is probably clearer. –  Joe Jul 21 '13 at 1:39

You are already using the pointers, since char * is literally "char pointer". You would just need to take the *'s out. But do note that strcmp compares strings, not characters or pointers. I don't know what you are trying to do but if you are looking to compare if they are the same object, just do:

if (name1 == name2) ...

But, if you are comparing their contents, you will need to dereference them:

if (*name1 == *name2) ...

If they are strings, then just use:

if (strcmp(name1, name2) == 0) ...

Hope this helps

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The arguments to strcmp should be pointers to char, not chars, so don't deference the pointers you already have:

  if (!strcmp(name,name1)) { 
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