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I'm a beginner in C and am having some trouble with structures in C. Here is my code;

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

struct rec
{
    char i;
    char b;
    char j;
} ;

int main()
{

 struct rec *p;
 p=(struct rec *) malloc (sizeof(struct rec));
 (*p).i='hello';
 (*p).b='world';
 (*p).j ='there';
 printf("%c %c %c\n",(*p).i,(*p).b,(*p).j);

 free(p);
 getch();
 return 0;
}

The out of this is; o d e

How can I pass in the whole word, rather than just one letter.

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2 Answers 2

up vote 1 down vote accepted

Define the structure members as char *:

struct rec
{
    char *i;
    char *b;
    char *j;
} ;

and use printf with %s:

printf("%s %s %s\n",(*p).i,(*p).b,(*p).j);

Also, you need to replace ' with ": (*p).j ="there"; and if you assign string literals (which may not be modified), change the struct members to const:

struct rec
{
    const char *i;
    const char *b;
    const char *j;
} ;
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The string assignments will also need to be enclosed in double quotes rather than single quotes. Technically the structure members should be declared const char * based on the original code sample. –  Mike Steinert Feb 29 '12 at 17:06
    
The original version didn't include it. –  Mike Steinert Feb 29 '12 at 17:12
    
That's true. But I edited after a minute –  MByD Feb 29 '12 at 17:14

The common string type in C is char*, which means a pointer to an array of char elements. C marks the end of a string with a special character \0. Those strings are generally called 0-terminated strings.

To save one in your structure you need something like this:

struct foo {
  char* words;
};

Character literals (a.k.a inline strings) have the type const char[n] where n is the length of the string plus one element for the null-terminator, so you cannot assign a character literal to a char*. You will need to allocate strlen(x) + 1 char elements and then copy the contents of the string literal into this memory. Don't forget to free it.

Maybe you should attempt to understand pointers and arrays first.

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