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Can I compare three variables like the following, instead of doing if((x==y)&&(y==z)&&(z=x))? [The if statement should execute if all three variables have the same value. These are booleans.]

if(debounceATnow == debounceATlast == debounceATlastlast)
{
 debounceANew = debounceATnow;
}
else
{
 debounceANew = debounceAOld;
}
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17  
-1 for not spending 30 seconds writing a test program to find out. –  PP. Dec 7 '10 at 15:10
4  
./shrug I'm more interested in understanding why it doesn't work. Thanks everyone. –  Isaac Dec 7 '10 at 15:24

3 Answers 3

up vote 33 down vote accepted

No, it does not.

x == y is converted to int, yields 0 or 1, and the result is compared to z. So x==y==z will yield true if and only if (x is equal to y and z is 1) or (x is not equal to y and z is 0)

What you want to do is

if(x == y && x == z)
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7  
I almost think gcc should generate a warning for this, but then again if you write x==y==z it seems to indicate that either you don't know C at all or you're a god of code golf... –  R.. Dec 7 '10 at 15:10
    
Thanks. I appreciate the help. –  Isaac Dec 7 '10 at 15:18
5  
When compiled with -Wall, gcc does produce a warning for such a construct: warning: suggest parentheses around comparison in operand of ‘==’ –  Kamal Dec 7 '10 at 15:23
    
@Armen Tsirunyan Didn't realize I could do that. –  Isaac Dec 7 '10 at 15:24
1  
@R..: I mean that x==y==z is the same as x^y^z if x, y, and z are boolean (the OP's context), or otherwise known to equal 0 or 1 already. –  A. Rex Dec 8 '10 at 19:53

No. The equality check associates from the left and the logical result is compared as a number, so that the expression 2 == 2 == 1 parses as (2 == 2) == 1, which in turn gives 1 == 1 and results in 1, which is probably not what you want.

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You can actually type something like this:

int main()
{
        const int first = 27,
                  second = first,
                  third = second,
                  fourth = third;
        if (!((first & second & third) ^ fourth))
            return 1;
        return 0;
}
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