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My question is exactly as stated above.

I'm wondering if it is enough to "trust" that the internal pointer of the array will always point to its first element no matter what and simply use this:

$bar = current($foo);

Or if I should take no chances and first reset the internal pointer of the array to its first element before using it like so:

reset($foo);
$bar = current($foo);

The reason I ask is because if the current() function alone is not reliable it could potentiality present misleading information to the end-user and I'll prefer to avoid any emails with the following subject:

"What is this? I don't even..."

I'm sure you understand. :)

EDIT:

I understand that the point of the current() function is to access wherever the current internal pointer of the array is. My question is whether or not the internal pointer is guaranteed to be pointing at the first element of the array immediately after array creation when no other function calls should have moved the internal pointer.

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1 Answer

up vote 5 down vote accepted

The point of current() is to access the element at wherever the internal pointer of the array currently is. If you want to use a function that always returns the first element, either reset() the internal pointer of that array (it also returns the value in the first element so you don't need to call current() after that), or use $foo[0] (doesn't move the pointer, use only for properly-sorted, numerically-indexed arrays).

With said, to answer your question, current() is guaranteed to return the first element of an array immediately after you create it using the array(...) notation. From the manual example for the current() function:

<?php
$transport = array('foot', 'bike', 'car', 'plane');
$mode = current($transport); // $mode = 'foot';
...

And from the manual example for the reset() function:

<?php

$array = array('step one', 'step two', 'step three', 'step four');

// by default, the pointer is on the first element
echo current($array) . "<br />\n"; // "step one"

...
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+1 -- should be noted that $foo[0] won't work if the array uses string instead of numeric keys. –  Billy ONeal Dec 27 '10 at 17:42
    
@Billy: Thanks, I added that. –  BoltClock Dec 27 '10 at 17:43
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