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What does array_search() return if nothing was found?

I have the need for the following logic:

$found = array_search($needle, $haystack);

if($found){
  //do stuff
} else {
  //do different stuff
}
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It's faster to try it and see the result than asking it. –  Luc M Apr 5 '10 at 23:05

4 Answers 4

up vote 13 down vote accepted

Quoting the manual page of array_search() :

Returns the key for needle if it is found in the array, FALSE otherwise.


Which means you have to use something like :

$found = array_search($needle, $haystack);

if ($found !== false) {
    // do stuff
    // when found
} else {
    // do different stuff
    // when not found
}

Note I used the !== operator, that does a type-sensitive comparison ; see Comparison Operators, Type Juggling, and Converting to boolean for more details about that ;-)

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1  
Note I used the !== operator, that does a type-sensitive comparison - that's exactly what the problem was. 0 was evaluating to false... thanks –  Derek Adair Apr 5 '10 at 22:45
    
You're welcome :-) ;; I've edited my answer to add links to some other relevant pages of the manual, btw :-) –  Pascal MARTIN Apr 5 '10 at 22:49
    
thanks, you rock! –  Derek Adair Apr 5 '10 at 22:52
1  
It now returns NULL instead. You might want to update your answer. –  Amal Murali Oct 6 '13 at 11:51
    
@AmalMurali - array_search() only returns NULL if an invalid parameter was supplied, e.g. a variable that is not an array. If you supply valid parameters, it will return false if the value is not found in the array. –  Gavin Aug 10 at 9:53

From the docs:

Searches haystack for needle and returns the key if it is found in the array, FALSE otherwise.

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array_search will return FALSE if nothing is found. If it DOES find the needle it will return the array key for the needle.

More info at: http://php.net/manual/en/function.array-search.php

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if you're just checking if the value exists, in_array is the way to go.

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