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If I have the following booleans

const YESTERDAY = false;
const TODAY = true;
const TOMORROW = false;

What code can I write to make sure exactly one is true?

I've tried this:

$x = self::YESTERDAY ^ self::TODAY ^ self::TOMORROW;

The problem is that with all three constants set to true then $x is true.

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you could put all the combination using OR condition (YESTERDAY=true AND TODAY=false AND TOMORROW=false) or (YESTERDAY=false AND TODAY=true AND TOMORROW=false) or (YESTERDAY=false AND TODAY=false AND TOMORROW=true) –  Naveen Babu Jan 30 '12 at 11:30
    
He need to sure that true is excalty ONE, not AT LEAST ONE. –  devdRew Jan 30 '12 at 11:32

6 Answers 6

up vote 6 down vote accepted

$x = ((int) self::YESTERDAY) + ((int) self::TODAY) + ((int) self::TOMORROW); Then if $x === 1; You've got what you need.

EDITED:

Even without type casts (int), it works well, thanks to @DaveRandom, so:

if (self::YESTERDAY + self::TODAY + self::TOMORROW == 1) {}, as for me.

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I thought about this but it'd be nice to avoid all that extra processing, is there a bitwise way to do this? –  Matt Jan 30 '12 at 11:34
    
+1 this - it seems after testing that you don't even need the (int) casts, it happens implicitly. –  DaveRandom Jan 30 '12 at 11:43
1  
This is much tidier than any of the other solutions. @Matt was almost correct in using the XOR (^) operator, but unfortunately true ^ true ^ true will evaluate to true, because PHP interprets it as (true ^ true) ^ true, i.e. false ^ true –  WildlyInaccurate Jan 30 '12 at 12:34

The neatest way I can think of is array_sum():

if (array_sum(array(self::YESTERDAY, self::TODAY, self::TOMORROW)) == 1) {
  // Do something
}

EDIT Actually, all you need to do it replace the ^ with + in your original attempt, and it achieves the same thing:

$x = self::YESTERDAY + self::TODAY + self::TOMORROW;

This turns $x into the number of TRUE values. So for a boolean output use:

$ok = self::YESTERDAY + self::TODAY + self::TOMORROW === 1;
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that is pretty neat! –  Matt Jan 30 '12 at 11:36
    
Actually a variation on devdRew's answer is the neatest - if you just replace the ^ with + in your original code it does the same thing - you don't need the (int) casts as this happens implicitly. –  DaveRandom Jan 30 '12 at 11:41
    
that's even neater! –  Matt Jan 30 '12 at 11:58

Just as an alternative to devdRew's answer

$x = array_count_values(array((int) self::YESTERDAY,(int) self::TODAY,(int) self::TOMORROW));
if (isset($x[1]) && $x[1] == 1) {
    echo 'Only one TRUE';
}
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You can loop over a list of your variables and break when you found a second boolean that is true:

$moreThanOneTrue=false;
$oneTrue;
foreach ($BOOL_VAR_ARRAY as $bool) {
    if ($bool) {
        if($oneTrue) {
            $moreThanOneTrue=true;
            break;
        }
        $oneTrue=true;
    }
}

Like this it's more handy when you have more than three variables.

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If there's more than 3 I think the array_sum method would be simpler than this –  Matt Jan 30 '12 at 13:49
    
@Matt: I agree.. –  ezdazuzena Jan 30 '12 at 14:00

x will return true if and only if one is true and others are false.

$x = ($a && !($b || $c)) || ($b && !($a || $c)) || ($c && !($a || $b));

May be a bad code, but works.

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a ^ b ^ c ^ (a & b & c) is the expresion you look for.

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