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I have to find is the number "a" a two-digit odd. Mistake comes on if

#include <stdio.h>
main ()
    int a,k;
    int count=0;
    printf ("input number \n", a);
    scanf ("%d", &a);
    k = a % 2;
    while (a)
        a /= 10;
        count ++;
    if (k = 1 && count = 2)
        printf ("It is \n");
        printf ("It is not \n");
    return (0);
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Not an exact duplicate of "lvalue required as left operand of assignment " error but same first-day-of-CS-101 problem. – Chris Lutz Sep 22 '11 at 2:32
@Nick: It may be a good idea to have the literal you are comparing with as the lvalue like in your current case i.e. use if ( 1 == k ) instead of if ( k == 1 ), this way in case you miss out one "=" you will get a compile time error. – another.anon.coward Sep 22 '11 at 3:45
Also as a habit for the start, always use a correct signature for main. It should be int main(void) or int main(int argc, char* argv[]) or nothing else. – Jens Gustedt Sep 22 '11 at 7:05
@another.anon.coward Or, better yet, just compile with the -Wall and -Werror flags, which produces a compile error with either statement. – reirab Jan 13 at 17:36

2 Answers 2

up vote 4 down vote accepted

The error is here:

if (k = 1 && count = 2)

you probably meant:

if (k == 1 && count == 2)

= is an assignment. == is a comparison for equality.

Also, the loop is not necessary. You can check if the number is two digits by checking if it's less than 100 and greater than or equal to 10.

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GCC is complaining about this:

if (k = 1 && count = 2)

The equality operator is a double equals sign: ==. What you've used, the single equals sign =, is the assignment operator.

You are setting k to 1 and count to 2, and that if will always be executed.

The message you're getting is designed to help people quickly catch exactly this problem.

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