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I need recive the char* from a function but I don't understand what is wrong.

int main(int argc,char** argv)
{

    char *respuesta;
    respuesta = comunicacion(comando);
    printf("respuesta uno %s",respuesta);

    return EXIT_SUCCESS;
}

char *comunicacion(char data[])
{
        unsigned char c ='d';
        char *respuesta;

        append(respuesta,c);

        return respuesta;
}
void append(char* s, char c)
{
        int len = strlen(s);
        s[len] = c;
        s[len+1] = '\0';
}

this is the error: main.c:24:15: warning: assignment makes pointer from integer without a cast [enabled by default]

share|improve this question
2  
What is line 24? – Colonel Thirty Two Feb 24 '14 at 0:12
    
Show the source of append as well. – Arkku Feb 24 '14 at 0:13
up vote 0 down vote accepted

The reason you see the "assignment makes pointer from integer without a cast" warning is that your comunicacion function lacks a prototype. When this happens, C assumes that your function returns an int, and all its parameters are int as well. Since neither of these is true about your comunicacion function, your code has undefined behavior.

Another problem is that comando is undefined. Finally, when you call append, respuesta is uninitialized. Using it in any way inside the append function would be undefined behavior, so the call strlen on the vale that's uninitialized is illegal.

Finally, note that the data parameter is unused in the comunicacion function. This needs to be changed - either use the parameter, or remove it from the function's signature.

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I put this before the main funtion, char *comunicacion(char data[]); for the prototipe and compiled, thanks a lot. – Premier Feb 24 '14 at 0:29
  1. in respuesta = comunicacion(comando); .... the compiler is assuming that comunicacion returns an int, since it has not seen a prototyp[e or definition. This is likely what generates the warning.

  2. in main(), comando apparently has not been declared. Had it already been defined as a global variable?

  3. in comunicacion(), respuesta is never set to anything. The call to append can have no effect on the value of respuesta.

share|improve this answer
    
thanks is the almost same than the first answer. – Premier Feb 24 '14 at 0:30

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