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Why is:

if(x!=y!=z)

handled as:

x=1
y=1
z=2

??

I just noticed it today.

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I'm sorry, but I don't understand what you are asking for. Can you check that you have added every detail required to understanding your question? –  jsalonen Nov 27 '11 at 18:00
8  
Devs who code like make collaborative work environments suck. –  AlienWebguy Nov 27 '11 at 18:00
13  
Both work. Neither does what you imagine. A good book on basic C (section "operators") will help. –  Kerrek SB Nov 27 '11 at 18:00
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4 Answers

up vote 19 down vote accepted

x != y and x == y return booleans.
You're comparing z to those booleans.

Neither of them will work they way you want them to.

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1  
This is not correct. == and != bind left to right. x is being compared to y in both examples. –  Charles Bailey Nov 27 '11 at 21:09
    
@CharlesBailey: I wasn't sure about that; fixed. Thanks! –  SLaks Nov 27 '11 at 21:21
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It probably is parsed as if ((x!=y) !=z) which does not do what you think if (x!=y!=z) should do (but does not).

Likewise if (x==y==z) probably means if ((x==y)==z) to the compiler which is not what you want.

Enable the warnings given by your compiler. With GCC, that means gcc -Wall and it would tell you warning: suggest parentheses around comparison in operand of '=='

Recall that a boolean expression like x==y gives a zero (when false) or non-zero (when true) result. Writing ((x==y) + (z==t)) is very poor taste, but makes sense for the compiler.

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+1 and another +1 for enabling warnings if I could give it. –  Loki Astari Nov 27 '11 at 19:22
1  
Why do you say "probably"? I can't think of a case where it isn't definitely. –  Charles Bailey Nov 27 '11 at 21:11
    
I was saying probably, because without the standard at hand, I was not entirely sure it is not parsed as (x!=(y!=z)) which would have been very counter-intuitive (even to me). –  Basile Starynkevitch Nov 27 '11 at 21:15
    
The last line is correct for C, but not for C++ (where boolean expressions evaluate to false) –  MSalters Nov 28 '11 at 8:16
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x == y == z is equivalent to (x == y) == z. In this case, (1 == 1) == 2, or true == 2, which is false because true == 1, not 2.

x != y != z is equivalent to (x != y) != z. In this case, (1 != 1) != 2, or false != 2, which is true because false == 0, not 2.

C(++) relational operators aren't chained like in Python. If you want to check whether three numbers are all equal to each other, use (x == y) && (y == z).

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I'm pretty sure that true == !0, so both 1 and 2 would be true. –  TMN Nov 27 '11 at 19:10
1  
dan04 has it right. (1==1) is of type bool and has value true. While both bool and int are integral types, they are not of the same type. Per the promotion rules, the bool value needs to promoted to an int so it can be compared to 2. In that conversion the bool value true is converted to 1, and 1==2 is false. –  David Hammen Nov 27 '11 at 20:11
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if(x==y==z) 

will not work untill the value u will use for z be 1 or 0 but u can take the value of x and y anything As when u try with the value 1 or 0 then the if will take its parameters as

 if((x==y)==z)

this is happening because it first evaluate whatever the value in x and y and the answer will be in boolean and then it checks with z which it expects to be boolean. so if (x==y) be and z is 1(true) then code will be executed else it wont.Same thing will happen with (x!=y!=z). try with z=1 or 0 and x,y be anything.

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