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$n=21;
$p=$n%10==1 && $n%100!=11 ? 0 : $n%10>=2 && $n%10<=4 && ($n%100<10 || $n%100>=20) ? 1 : 2;

why is $p = 2? it is supposed to be $p = 0! is it a bug or am I missing something?

I got this from trying to get the plural form for Russian on: http://www.gnu.org/s/hello/manual/gettext/Plural-forms.html

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2 Answers 2

up vote 3 down vote accepted

should be this one:

$p=($n%10==1 && $n%100!=11) ? 0 : (($n%10>=2 && $n%10<=4 && ($n%100<10 || $n%100>=20)) ? 1 : 2);

the error was in missing bracets

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Should have spotted that, mis-read the != leading me down a wrong path. :) +1 –  David Barker Dec 5 '11 at 9:54
    
@David Barker, thanks. anyway i didn't even tried to understand this piece of code, only corrected error, so your answer was interesting! –  k102 Dec 5 '11 at 10:09
    
It is so obvious now, thank you! –  Timo Huovinen Dec 5 '11 at 10:22
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you can see here: http://php.net/manual/en/language.operators.comparison.php that "It is recommended that you avoid "stacking" ternary expressions. PHP's behaviour when using more than one ternary operator within a single statement is non-obvious". You can see that if you enclose the else part for the first if between ( and ) you will get another result:

$p=$n%10==1 && $n%100!=11 ? 0 : ($n%10>=2 && $n%10<=4 && ($n%100<10 || $n%100>=20) ? 1 : 2);

Maybe you should consider changing you statement to a "regular" if block, something like:

if ($n%10==1 && $n%100!=11) 
{
    $p =0 ;
} 
elseif ($n%10>=2 && $n%10<=4 && ($n%100<10 || $n%100>=20))
{
    $p = 1;
}
else 
{ 
    $p= 2;
}

this way being easier to read

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