135

Not a major problem but I was wondering if there is a cleaner way to do this. It would be good to avoid nesting my code with an unnecessary if statement. If $items is empty php throws an error.

$items = array('a','b','c');

if(!empty($items)) { // <-Remove this if statement
  foreach($items as $item) {
    print $item;
  }
}

I could probably just use the '@' error suppressor, but that would be a bit hacky.

7
  • 19
    What? If you just comment out the if you have there, and change the first line to $items = array();, it works perfectly fine and operates logically. There must be more to your question. Is $items perhaps not an array?
    – strager
    Aug 10, 2010 at 6:26
  • 2
    i guess its in case return from function which may return false too. I also have similar problem and i always check using is_array
    – KoolKabin
    Aug 10, 2010 at 6:34
  • 2
    FYI - ``foreach does not support the ability to suppress error messages using '@'.` - php.net/manual/en/control-structures.foreach.php - so, no, you couldn't use @ Aug 10, 2010 at 7:42
  • +1 for strager. If $items is really an array, php won't give you an error or warning. Check your if/else branches and make sure you initialized variable as an array. Feb 25, 2013 at 4:05
  • you can find this situation with data coming from a non-trusted function. That case, an if is not unnecessary and it can be even better/cleaner than some other solutions which could be more cryptic and harder to read. Oct 6, 2014 at 15:49

11 Answers 11

229

There are a million ways to do this.

The first one would be to go ahead and run the array through foreach anyway, assuming you do have an array.

In other cases this is what you might need:

foreach ((array) $items as $item) {
    print $item;
}

Note: to all the people complaining about typecast, please note that the OP asked cleanest way to skip a foreach if array is empty (emphasis is mine). A value of true, false, numbers or strings is not considered empty. In addition, this would work with objects implementing \Traversable, whereas is_array wouldn't work.

15
  • 2
    Just what I wanted. If the variable is not an array the loop won't be run. Thanks.
    – Benbob
    Aug 13, 2010 at 3:53
  • 4
    @Keyo it would. and it will throw an error when $items undefined Oct 3, 2011 at 11:51
  • @Keyo made an edit, describing what YCS means. Just don't do it generally ;) Jul 4, 2013 at 3:32
  • 9
    Notice,when $items is false.(array)$items will get array(false)
    – user890973
    Jul 25, 2013 at 6:29
  • I didn't get an error when $items undefined. Is this for the old version only? May be new PHP versions took care of this situation? Apr 11, 2014 at 14:48
31

The best way is to initialize every bloody variable before use.
It will not only solve this silly "problem" but also save you a ton of real headaches.

So, introducing $items as $items = array(); is what you really wanted.

8
  • 4
    Not if initializing from a function/method. $items = get_stuff(). It's easier just to cast and falsy variables return an empty array.
    – Benbob
    Oct 4, 2011 at 22:41
  • 9
    get_stuff() may come from an external API. It's not uncommon for library functions to return Array|NULL Apr 9, 2016 at 17:40
  • 2
    Even phps own functions return different types. Assume you request some JSON array over the network. You know that the produced JSON is always an array. So json_decode() will always return an array? No. A network timeout might occur, the received JSON will be incomplete and json_decode will return NULL. This is not made up, its a real life example taken from a recent bug in piwik, a popular analytics script: github.com/piwik/piwik/pull/11098 From your answer, the solution would have been to change php's json_decode()? Jan 17, 2017 at 13:57
  • 2
    @YourCommonSense where is your answer doing any validation? Validating would mean e.g. checking whether what json_decode() returned is an array, which is exactly what the answer of Matt Williamson says. Jan 17, 2017 at 14:13
  • 1
    @YourCommonSense The solution you describe is of course correct. But your original answer does not mention that and how to validate the input. It might even lead some people to false assumptions, like thinking this is safe just because initialization was used: $items=array(); $items=json_decode($str); foreach($items as $item)... Jan 17, 2017 at 14:28
30
$items = array('a','b','c');

if(is_array($items)) {
  foreach($items as $item) {
    print $item;
  }
}
2
  • 4
    This doesn't remove any lines, but the code is much more self documenting and easier to read. Aug 10, 2010 at 7:29
  • 5
    +1 this way if $items is array but is empty, the foreach will not run and there will be no error. but empty() doesn't guarantee if $items is an array, so an error is possible Aug 10, 2010 at 8:49
17

If variable you need could be boolean false - eg. when no records are returned from database or array - when records are returned, you can do following:

foreach (($result ? $result : array()) as $item)
    echo $item;

Approach with cast((Array)$result) produces an array of count 1 when variable is boolean false which isn't what you probably want.

3
  • 1
    This will produce a syntax error when assigning by reference, as in "foreach... as &$item", because when $result is null it can't assign a reference to "array()". See: php.net/manual/en/control-structures.foreach.php
    – Russell G
    Feb 27, 2015 at 19:48
  • Yes, good point. However, it is still useful in simpler cases. Feb 27, 2015 at 19:57
  • 2
    Since PHP 5.3, it is possible to leave out the middle part of the ternary operator. So it may become foreach (($result ?: array()) as $item). And if $result may be null, then php 7 introduced null coalescing operator foreach (($result ?? array()) as $item). See php.net/manual/en/language.operators.comparison.php
    – KumZ
    Aug 21, 2020 at 13:04
16

I wouldn't recommend suppressing the warning output. I would, however, recommend using is_array instead of !empty. If $items happens to be a nonzero scalar, then the foreach will still error out if you use !empty.

3
  • 9
    +1 suppressing warnings and errors is never a good idea.
    – Christian
    Aug 10, 2010 at 7:16
  • 3
    I hat the is_[array] function, this sound like a poor programming still. Let me explain why: Why asking that a variable is an array? You should know that is an array otherwise it mean that you are messing with the type of the variable. If your type is getting inconsistent you are looking for trouble. When you start using the is_* function it tend to be spread all over your code. And after all you never know if the is_* is necessary and your code is being unreadable. I suggest you to fix the origin of the type inconsistency instead.
    – mathk
    Aug 11, 2010 at 9:42
  • 2
    @mathk You probably come from strongly typed language. PHP variable can store anything, that's why is_array, is_numeric, etc are needed functions.
    – Daniel Wu
    Nov 22, 2019 at 5:41
6

I think the best approach here is to plan your code so that $items is always an array. The easiest solution is to initialize it at the top of your code with $items=array(). This way it will represent empty array even if you don't assign any value to it.

All other solutions are quite dirty hacks to me.

3
  • Sadly this doesn't work; PHP generates this error even when it's a properly empty array. It can't distinguish at runtime. Jun 5, 2011 at 23:24
  • @Chris Arguin How come? Please post an example here. It shouldn't throw errors on array. Jun 6, 2011 at 9:52
  • 1
    See snippetdb.com/php/foreach-empty-array for a simple example; I stumbled upon this article while trying to figure out why my PHP code was failing when they array was empty. This doesn't seem to happen to everybody, so there may be some complicating factor. Jun 10, 2011 at 22:51
5
foreach((array)$items as $item) {}
3

i've got the following function in my "standard library"

/// Convert argument to an array.
function a($a = null) {
    if(is_null($a))
        return array();
    if(is_array($a))
        return $a;
    if(is_object($a))
        return (array) $a;
    return $_ = func_get_args();
}

Basically, this does nothing with arrays/objects and convert other types to arrays. This is extremely handy to use with foreach statements and array functions

  foreach(a($whatever) as $item)....

  $foo = array_map(a($array_or_string)....

  etc
1
  • because you better ask why in first place you got a null or object instead of an array. You are assuming that the type is inconsistent. And you spread the test all over your code.That is kind of defensive programming.
    – mathk
    Aug 11, 2010 at 12:09
1

Ternary logic gets it down to one line with no errors. This solves the issue of improperly cast variables and undefined variables.

foreach (is_array($Items) || is_object($Items) ? $Items : array()  as $Item) {

It is a bit of a pain to write, but is the safest way to handle it.

1

You can check whether $items is actually an array and whether it contains any items:

if(is_array($items) && count($items) > 0)
{
    foreach($items as $item) { }
}
1
  • 1
    count($items) > 0 is unnecessary, it is enough to check if $items is truthy -> empty arrays are falsy in PHP: if(is_array($items) && $items)
    – gsziszi
    May 4, 2019 at 14:41
0

Best practice is to define variable as an array at the very top of your code.

foreach((array)$myArr as $oneItem) { .. }

will also work but you will duplicate this (array) conversion everytime you need to loop through the array.

since it's important not to duplicate even a word of your code, you do better to define it as an empty array at top.

1
  • This is not true. The typecasting is only done once. Also, PHP variables are not typed - a variable can change its type at any point in time.
    – Christian
    Sep 27, 2015 at 2:14

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