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I'm having some woes with the above stated warning on an array.

I completely understand what the warning is, and what causes it, and I have taken every step I can to prevent it, but alas, none are having any effect.

Steps taken:

I have Checked for the array, declared it if not exists.

if(!$this->theVariables['associated']){
    $this->theVariables['associated'] = array();
   }

and

$this->theVariables['associated'] = $this->theVariables['associated'] || array();

Neither have any effect.

I have wrapped the foreach in an if that checks the array is not empty (!empty()), that it exists, that it is an array (is_array()), and then even type cast the array in the foreach declaration (foreach((array)$this->theVariables['associated'] as $item)) yet I am still getting this Warning.

As I have no way of switching error reporting off on this specific server, is there no other way of stopping this warning from displaying?

It is driving me nuts.

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Can you var_dump the variable you are using and post the result here? –  Ólafur Waage May 31 '11 at 10:23
    
Are you sure you are checking the correct array? Or that it doesn't get overwritten inside the loop? –  Carlos Campderrós May 31 '11 at 10:28
    
var_dump before I check for the array returns null, var_dump after I check and declare it returns array(empty) as expected. So the object is now an array, yet I still get this warning every time I try a foreach –  Designermonkey May 31 '11 at 10:48
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4 Answers

up vote 1 down vote accepted

try:

if (is_array($this->theVariables['associated'])) {
  // your foreach here
}

bacause for example if

$this->theVariables['associated'] would be 1 this array assignment would never be reached:

if(!$this->theVariables['associated']){
    $this->theVariables['associated'] = array();
}

(The same goes for your second test)

As for Ólafur Waages comment, have a look at Lazy evaluation.

For example, if your test looked something like this, you'll probably get problems:

<?php
$fakeArray = 'bad';

if (empty($fakeArray) && !is_array($fakeArray)) {
    $fakeArray = array();
}

var_dump($fakeArray);

Output:

string(3) "bad"
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He states in the question that he has tried that. –  Ólafur Waage May 31 '11 at 10:25
    
@Ólafur Waage as there is no example code of his testing with is_array I can only guess he is running into an lazy evaluation problem. (for example using an !is_empty(...) || before the is_array check) –  Yoshi May 31 '11 at 10:27
    
I have tried this, as the question states. –  Designermonkey May 31 '11 at 10:49
    
@Designermonkey Then please supply the code you tried (or better, the complete code). As is_array is normally foolproof. –  Yoshi May 31 '11 at 10:50
    
I am marking this answer as correct as I can't retract the question. Our server wasn't reflecting the changes made in the code on each deployment of said code. I have just thoroughly gone through the code on the server to find that none of my edits had been applied. –  Designermonkey May 31 '11 at 10:57
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Why just didn't check with if (is_array($this->theVariables['associated'])){?

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If you really need to loop through that object, cast it as an array first:

foreach((array) $this->theVariable as $key => $value){
     echo $key . " = " . $value . "<br>";
 }
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if (!$this->theVariables['associated'])

is not checking whether the array exists.

Write this instead:

if (!isset($this->theVariables['associated']) ||
   !is_array($this->theVariables['associated']))
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