Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.
strcpy((*pointeur).caractere, x);

I use strcpy to copy the value of x to (*pointeur).caractere and I define the struct

typedef struct cle{
    char caractere;
    int compteur;
    struct cle *suivant;
}cle_t;

and declare the pointer

cle_t *pointeur;

but the compiler told me that

"invalid conversion from 'char' to 'char*'"

and

"initializing argument 1 of `char* strcpy(char*, const char*)' "

I can't understand what goes wrong... Thank you all guys~

share|improve this question
    
How is x declared? –  alk Nov 10 '12 at 15:59
    
like this : char x = 'a' –  Bob Zhen Nov 11 '12 at 11:05
    
The str*() family of functions works on character arrays. Arrays of characters carrying a '\0' as last element are commonly called strings. –  alk Nov 11 '12 at 11:08
    
oh, thanks for reminding that...i understand now... –  Bob Zhen Nov 11 '12 at 11:13

3 Answers 3

Salut !

caractere is a character, and strcpy works with strings. There are two solutions, according to what you want to do (with your identifiers, I guess you are rather in the fist case).

  • If x is a char, use pointeur->caractere = x (no need to strcpy to copy characters).
  • If x is a char* or a char[], declare caractere as a string with a sufficient length (ie with an array of char or a pointer to char dynamically allocated), and then you can call strcpy.
share|improve this answer
    
@Daniel Fischer: Thanks for your comment; I'm sorry. I'll correct it. –  md5 Nov 10 '12 at 16:02
    
No reason to be sorry. De rien. –  Daniel Fischer Nov 10 '12 at 16:03
    
Salut, merci pour ta réponse... –  Bob Zhen Nov 11 '12 at 10:42
    
but, when I change the line to pointeur->caractere = x cause I had defined char x = 'a', but it doesn't work neither... –  Bob Zhen Nov 11 '12 at 10:53
    
Compilation error? Runtime error? ... –  md5 Nov 11 '12 at 10:54
strcpy((*pointeur).caractere, x);

This will work fine but caractere should be a char *or char[]

here is the declaration of strcpy()

char *strcpy(char *dest, const char *src);

Also note that if you are creating caractere as a char* then make sure to allocate memory for this other wise using strcpy() will give undefined behaviour or may lead to seg fault

One more thing : If you are making a pointer to struct then you can directly use -> operator to access the data members

share|improve this answer
    
thanks for your reply, yes, this works fine, but i just want to use char, if i use char* or char[], that's another stuff to work...thank you anyway.... –  Bob Zhen Nov 11 '12 at 11:03

1- syntax: You have a pointer to a struct and then access its fields: this case is so common that C provides ''syntactic honey'' (du ''miel syntaxique''; en fait l'expression réelle est ''syntactic sugar'', je plaisante):

(p_struct*).field
// -->
p_struct->field

In your case:

strcpy((*pointeur).caractere, x);
// -->
strcpy(pointeur->caractere);

Use this form not only because it's nicer, but because everyone uses the arrow, so the meaning is more obvious.

2- strcpy copies strings, not characters. Strings are character arrays, with a 0 at the end, or pointers to them. So, if you want to use strcpy, you need either to replace the field caractere with a field chaine holding a string, or make a string on the fly from caractere before passing it to strcpy. But if you only want to copy the char, just copy it with =.

3- Beware of the misleading term "character". A C char actually is just a byte (moreover, either signed or not depending on your platform). For universal text, that is anything but ASCII, an actual character (in the evryday, linguistic, or programming sense) may be represented with one or more codes, each taking one or more bytes (C chars). (See UCS & Unicode on wikipedia.)

share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.