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I think my problem is something simple, but I'm not seeing it. I'm new to programming in C and this is an effort to see what I've absorbed, bit by bit. I think I must have not properly defined my char variable "dopt". Hope you can help. Here's the code:

#include <stdio.h>


int dbref();
int aart();
int wgame();
int calc();
int txtoc();

int amin()

{
char dopt;
printf("What should this program have the options of doing?\n");
printf("A) Reference a database?\n");
printf("B) Print ascii art?\n");
printf("C) Make a noun, pronoun, object, verb word game?\n");
printf("D) Being a calculator?\n");
printf("E) creating a text file and save it as a .c file?\n");
printf("F) or should it just terminate?\n");
scanf("%c", &dopt);
if (dopt == a || A)
    { dbref();}
if (dopt== b || B)
     { aart();}
if ( dopt==c || C)
    { wgame();}
if ( dopt==d || D)
     { calc();}
if ( dopt==e || E)
    { txtoc();}
if (  dopt==f || F)
    { return 0;}
return 1;
}

dbref()
{
printf("reference A correct");
return 2;
}

aart()
{
printf("reference B correct");
return 3;

}

wgame()
{
printf("reference C correct");
return 4;

}

calc()
{
printf("reference D correct");
return 5;

}

txtoc()
{
printf("reference E correct");
 return 6;

}

As a sidenote, the printf routines in the functions are just to verify that the menu is flowing correctly.

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Is this homework? If so, please mark it as such. –  Jonathan Grynspan Aug 25 '11 at 17:27
    
is the function name amin or main ? –  phoxis Aug 25 '11 at 17:42
    
Nope, this isn't homework. It's called learning for fun. –  Michael O'hearn Aug 25 '11 at 18:09
    
BTW=> Thanks for catching that type-o. :) –  Michael O'hearn Aug 25 '11 at 18:10
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4 Answers

up vote 0 down vote accepted

a is not the same as 'a'

  • a is an identifier
  • 'a' is a character

You want to match that if the contents of the char variable dopt is any of the characters. So you need to compare the ASCII values of the characters, which can be found by placing the character within a single quotes.

Therefore

if (dopt == a || A)
   { dbref();}

a and A are treated as two separate variables (names), which are not declared (at least locally) .

Thus it should be

if (dopt == 'a' || 'A')
    { dbref();}

Here 'a' and 'A' are character constants and not variable names.

BUT 'a' || 'A' is always 1 because || is logical OR operator. Therefore dopt will always be false (almost). But if you want to make the effect that if dopt is either 'a' or 'A' then call dbref () then you need to do the following:

if ((dopt == 'a') || (dopt == 'A'))
    { dbref();}

or also

if (toupper (dopt) == 'A') // similar with tolower ()
    { dbref();}
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1  
Thank you so much. I knew that it was something small. I learned from this too. Love to learn! Thanks again! :D –  Michael O'hearn Aug 25 '11 at 17:59
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Code like this:

if (dopt == a || A)

should be written something like this:

if (dopt == 'a' || dopt == 'A')

because a would be the name of a variable or function (which doesn't exist), and 'a' is a character literal.

Alternatively, you could consider a switch block:

switch (dopt)
{
case 'a':
case 'A':
    dbref();
    break;
case 'b':
case 'B':
    aart();
    break;
/* etc. */
default:
    fprintf(stderr, "Unrecognised option!\n");
    return 1;
}
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Writing dopt == a || A does not work in C. What you want is

dopt == 'a' || dopt == 'A'

In C, you have to enclose character literals with ' (otherwise they are interpreted as variables). You also can't combine the logical or, but have to type in the dopt == each time.

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You want to quote your letters in the option check, otherwise they're treated as variables, and will fail to compile because they don't exist.

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