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How should I test if an array contains at least 1 element (rather than just being an empty array $myarray = array();)?

Is there a THE way?

E.g.

if ($myarray) { }

if (count($myarray)) { }

if (count($myarray) > 0) { }

Or is there a THE wrong way?

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3 Answers 3

up vote 9 down vote accepted

For at least 1 element it would be:

if (!empty($myarray)) {}
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It returns true if the array contains at least 1 item. –  Liam Bailey Jan 13 '12 at 23:50

Maybe check for non-emptiness via empty()?

The following things are considered to be empty:

  • "" (an empty string)
  • 0 (0 as an integer)
  • 0.0 (0 as a float)
  • "0" (0 as a string)
  • NULL
  • FALSE
  • array() (an empty array)
  • var $var; (a variable declared, but without a value in a class)
if (!empty($myarray)) { 
    //
}

But I am not sure, if there is one canonical way to do it; php might follow TMTOWTDI.

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Rather: !empty($myArray) –  Benoit Jan 13 '12 at 23:47
    
I would say !empty($array) –  Rene Pot Jan 13 '12 at 23:47
    
@miku Well it's propably a matter of TIMTOWTDIBSCINABTE so empty() it is :) –  PeeHaa Jan 14 '12 at 0:05

I believe if(!empty($myarray)) works too. It will mean you won't run w/e if you get array([0] => '')

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What do you mean by It will mean you won't run w/e if you get array([0] => '')? –  PeeHaa Jan 13 '12 at 23:53

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