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I have $var1, $var2, $var3 and $type. I want to check if $var1 and $var2 are empty when $type=1 but when $type=2 I want to check if $var1, $var2 and $var3 are empty.

I've tried with

 if(($type==1 AND empty($var) AND empty($var1)) OR ($type==2 AND empty($var1) AND empty($var2) AND empty($var3)))
 {//...}

but it doesn't work in the second case when $type=2; So how to get this done with one if statement?

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3  
Looks valid to me. Ugly, but valid. –  Lightness Races in Orbit Jan 28 '12 at 18:13
    
You are using $var in your first empty statement and $var1 when checking type2. Intended or typo? –  knittl Jan 28 '12 at 18:15
2  
Turns out "doesn't work" -- meaningless as it is -- isn't even accurate. See my answer. –  Lightness Races in Orbit Jan 28 '12 at 18:19

3 Answers 3

up vote 3 down vote accepted

Don't use "if", but take advantage of dropping through the cases in a switch

$result = TRUE;
switch ($type) {
    case 2:
        $result = $result && empty($var3);
    case 1:
        $result = $result && empty($var2);
        $result = $result && empty($var1);
        break;
    default:
        $result = FALSE;
}
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I like that approach. In case 1 you could write $result = $result && empty($var2) && empty($var1); –  knittl Jan 28 '12 at 18:16
    
So I can't do it with just one if but with multiple if statements + switch? –  lam3r4370 Jan 28 '12 at 18:17
    
@lam3r4370: Yes, you can. Your code works just fine the way it is (except that it is ugly, so it's recommended to change it). See my answer. In fact, read all the answers, not just the top one. –  Lightness Races in Orbit Jan 28 '12 at 18:19
    
@knittl - I would have done that if I'd been doing it for myself, but wrote it longhand for the benefit of the OP. Allowing dropthrough rather than using break in a case can sometimes be useful, as in this case.... but in the real world I'd also put a comment in explaining why no break, else some other developer might consider it an error –  Mark Baker Jan 28 '12 at 18:19
1  
Whilst good advice, this doesn't answer the stated question. The question is "why doesn't my code perform the function I expect of it?" The answer is "it does". –  Lightness Races in Orbit Jan 28 '12 at 18:25

I recommend to use multiple if statements:

switch($type) {
  case 1: if(empty($var1) && empty($var2)) {
    …
  }
  break;
  case 2: if(empty($var1) && empty($var2) && empty($var3)) {
    …
  }
   break;
}
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Whilst good advice, this doesn't answer the stated question. The question is "why doesn't my code perform the function I expect of it?" The answer is "it does". –  Lightness Races in Orbit Jan 28 '12 at 18:25

In the first case, you wrote $var instead of $var1.

See, with line breaks:

if (
    ($type==1 AND empty($var) AND empty($var1))
   OR
    ($type==2 AND empty($var1) AND empty($var2) AND empty($var3))
   ) {}
//                        ^

You'd have spotted this if your code weren't completely illegible.

Otherwise, your code does perform as advertised:

<?php
$type = 2;
$var  = '';
$var1 = '';
$var2 = '';
$var3 = '';

if(($type==1 AND empty($var) AND empty($var1)) OR ($type==2 AND empty($var1) AND empty($var2) AND empty($var3))) {
   echo '!';
}

// Output: !
?>

That fact makes this a total non-question. Please take greater care over your questions in future, providing actual testcases that actually reproduce the problem, to prove that you haven't just made some other mistake that you're not showing us.

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You are right.I didn't know this site thus I didn't reproduce the problem.Thanks for the advices :) –  lam3r4370 Jan 28 '12 at 18:30

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