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Trying to write a simple calculater in C. I'm stuck in having the program terminated if letter 'A', 'B', 'C' or 'D' is not entered, otherwise continue. Even though I enter a valid character it never proceeds.

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

int main()
{
    char letter;
    float num1,num2;
    printf("What operation would you like to perform?\n\tA) Addition\n\tB) Subtraction\n\tC) Multiplication\n\tD) Division\n\n");
    scanf("%c", &letter);

    if (letter != 'A' || letter != 'B' || letter != 'C' || letter != 'D')
      printf("Not a valid operation\n");
        return 1;

    printf("Please enter first number: ");
    scanf("%f", &num1);
    printf("Please enter second number: ");
    scanf("%f", &num2);

    if (letter == 'A' || letter == 'a')
        printf("The sum of %f and %f, is %f\n", num1, num2, num1 + num2);

    else if (letter == 'B' || letter == 'b')
        printf("The difference of %f and %f, is %f\n", num1, num2, num1 - num2);

    else if (letter == 'C' || letter == 'c')
        printf("The product of %f and %f, is %f\n", num1, num2, num1 * num2);

    else if (letter == 'D' || letter == 'd')
        printf("The quoation of %f and %f, is %f\n", num1, num2, num1 / num2);
    else 
        printf("The operation was not valid");
    return 0;

}

Thank you for your help.

share|improve this question
    
You have two 'B' clauses in your if-else ladder. –  dreamlax Sep 14 '13 at 1:33
    
Thanks dreamlax. I just corrected that. The problem however still exists. –  holasz Sep 14 '13 at 1:36
    
You may need to call fflush(stdout); after the printf's that don't include a \n at the end of the string in order to make them show up right away. –  Jeremy Friesner Sep 14 '13 at 1:41
4  
@holasz: Please don't edit your question to correct it for things people tell you in their answers, otherwise the answers make no sense at all when you read them. It's better to ask a new question, or at the minimum add a new section prefaced "EDIT:" so the original code is still visible. –  Paul Griffiths Sep 14 '13 at 1:52
    
You've got a problem with your quoation (which should be a 'quotient' in English), in that the code will never be executed because you copied and pasted and forget to edit the B and b into D and d. We can understand what you intended; compilers won't. –  Jonathan Leffler Sep 14 '13 at 1:54

3 Answers 3

up vote 3 down vote accepted
if (letter != 'A' || letter != 'B' || letter != 'C' || letter != 'D')
  printf("Not a valid operation\n");
    return 1;

This part is the problem. Although return 1; is indented, it will execute regardless because it is not part of the if block. Additionally, you are using the wrong operator, your condition statement reads "if letter is not A or letter is not B ..." which is always going to be true because letter cannot be both A and B at the same time. You need to envelope the two statements and use the && operator instead, like this:

if (letter != 'A' && letter != 'B' && letter != 'C' && letter != 'D')
{
    printf("Not a valid operation\n");
    return 1;
}

In C, indentation is meaningless to the compiler. If you need to execute multiple statements as a result of a condition, they must be wrapped up into a compound statement using { and }.

share|improve this answer
    
Additionally, if the user types in a, b, c, or d, then the first if block, even after your correction, will reject it. But your larger point, always use braces, is correct. –  Eric Jablow Sep 14 '13 at 1:38
3  
You need to replace || with &&, otherwise the condition is always true (letter cannot be equal to more than one char at a time, so even if one of the conditions is false, the other tree are going to be true). –  dasblinkenlight Sep 14 '13 at 1:39
    
I updated the post. THe problem is still there. Even surrounding it with brackets. {..} –  holasz Sep 14 '13 at 1:40
1  
@holasz look at what dasblinkenlight said and think about how || works. The problem will become apparent. –  Nik Bougalis Sep 14 '13 at 1:41
1  
@holasz: use if ( tolower(letter) == 'a' ) or similar. C has no standard regex support, although C++ now does. –  Paul Griffiths Sep 14 '13 at 1:59

You check

 if (letter != 'A' || letter != 'B' ...)

Ok - if letter is 'B', then it is not A, and the program stops testing there and prints your failure condition and returns.

On the other hand, if letter was 'A', it would not be 'B', and so it would fail the second test instead, and fail there.

What you want:

if (letter != 'A' && letter != 'B' && letter != 'C' && letter != 'D')

Alternately, you could use the C function "strchr" which searches for a character in a string.

if (!strchr("ABCDabcd", letter)) // returns NULL, which is false, if no match
{
    printf("Invalid operation");
    return 1;
}
share|improve this answer

Try:

if (letter != 'A' && letter != 'B' && letter != 'C' && letter != 'D')
...
share|improve this answer

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