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So, as the title says... any alternative to:

$valid_times = array('ever', 'today', 'week', 'month');
if (($this->_time == 'ever') OR ($this->_time == 'day'))

OR

if (in_array($this->_time, $valid_times))

??

Note: I know the mentioned above works, but I'm just looking for new things to learn and experiment with

UPDATE

Thanks for the info, but I didn't mentioned switch() as an alternative because it's not the case for my code. It has to be an if-statement, and I was wondering if exists something like:

if($this->_time == (('ever') OR ('day') OR ('month')))

What do you think? That would be a shorter way of the first if mentioned above

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Whether the second is an alternative to the first depends on the content of $valid_times. –  Arjan Aug 24 '12 at 15:54
    
This would all depend on what you are trying to do. –  Jonathan Kuhn Aug 24 '12 at 15:55
    
Given the updated question, I've rewritten my answer. –  SDC Aug 24 '12 at 16:11
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6 Answers

up vote 2 down vote accepted

What about ?

$a1 = array("one","two","three");
$found = "two";
$notFound = "four";

if (count(array_diff($a1,array($found))) != count($a1))
/* Found */

Either you can use

$found = array("one","three");

if (count(array_diff($a1,$found)) != count($a1));
/* Either one OR three */

http://codepad.org/FvXueJkE

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interesting method, you just gave me an idea to fix something else +1 –  w0rldart Aug 24 '12 at 16:06
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The only alternative I can think to accomplish this would be using regex.

$valid_times = array('ever','day','week','hour');

if(preg_match('/' . implode('|', $valid_times) . '/i', $this->_time)){
    // match found
} else {
    // match not found
}
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2  
convoluted, but does answer the question. +1. –  SDC Aug 24 '12 at 16:01
    
Yep, definitely convoluted, silly implementation, but it will work. –  Marcus Recck Aug 24 '12 at 16:02
    
lol, I didn't expected something like that, but as @SDC says... it answers the question (: +1 –  w0rldart Aug 24 '12 at 16:03
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[EDIT] Removed original answer since you've now specified you don't want to use switch.

In your updated question, you asked if something like this is possible:

if($this->_time == (('ever') OR ('day') OR ('month')))

The direct answer is 'no, not in PHP'. The closest you'll get is in_array(), with the array values in place in the same line of code:

if(in_array($this->_time, array('ever','day','month'))

PHP 5.4 has an update allows for shorter array syntax, which means you can drop the word array, which makes it slightly more readable:

if(in_array($this->_time, ['ever','day','month'])

But it is still an in_array() call. You can't get around that.

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ok, thanks for the updated answer +1 –  w0rldart Aug 24 '12 at 16:17
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Sometime like this for in_array?

$arr = array(1, 2, 'test');
$myVar = 2;

function my_in_array($val, $arr){
    foreach($arr as $arrVal){
        if($arrVal == $val){
            return true;
        }
    }
    return false;
}

if(my_in_array($myVar, $arr)){
    echo 'Found!';
}
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1  
that's hardly an alternative; that's just re-writing the existing built-in function. –  SDC Aug 24 '12 at 15:57
    
@SDC He said he's just looking to experiment. Could be a HW assignment to write your own version of PHP functions for all we know. –  Wayne Whitty Aug 24 '12 at 15:58
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Convoluted, but it is an alternative

$input = 'day';
$validValues = array('ever','day');
$result = array_reduce($validValues,
                       function($retVal,$testValue) use($input) {
                           return $retVal || ($testValue == $input);
                       },
                       FALSE
                      );
var_dump($result);
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convoluted yes, but interesting experiment (: –  w0rldart Aug 24 '12 at 19:59
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You could also use the switch statement.

switch ($this->_time) {
  case 'ever':
  case 'day':
    //code
    break;
  default:
    //something else
}
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