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at first I wanna say that I'm new in PHP.

I have an implementation that checks an object is in array or not, if not adds another array. But it always returns false and adds in theorder array.

How can I solve it?

Here part of the code:

$temp = new tempClass($x, $y);

	if (!in_array($temp, $temp_array)) {
			$temp2_array[] = $temp;
	}
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2 Answers 2

Since you are adding instances in the array, make sure that the array in_array() uses strict mode comparison:

$temp = new tempClass($x, $y);

if (!in_array($temp, $temp_array, true)) {
  $temp2_array[] = $temp;
}

Also, you need to understand that 2 different instances of a class, even if they hold the same data, are still 2 different instances. You'll need to create your own loop and compare your instances manually if you which to know if 2 instances are the same.

You can omit strict mode which will compare the members of the class, but as soon as you have a different member, it will be non-equal.

$temp = new tempClass($x, $y);

if (!in_array($temp, $temp_array)) {
  $temp2_array[] = $temp;
}
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As you said I created my own loop but again I get same result. Here is the code: function exists($b, $array) { foreach( $array as $a ) if($a->x == $b->x) return true; return false; } –  Kaan Aug 8 '09 at 18:08
    
Then I really don't know what to say. Seems to me you are pasting pseudo-code instead of your code, but your problem is in your code. A semi-colon between the if statement and the braces perhaps? –  Andrew Moore Aug 8 '09 at 20:11

I think it's because you're checking for a reference to the new object in your array, not the values of that object. Try doing:

print_r($temp_array);

And see what you get... this should give you an idea of how to fix it.

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