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In php, would the function count work also on a JSON object? Will it return the number of elements in the object? Or does this function only work for an array?

count($varJSONobject);
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Possible duplicate: stackoverflow.com/questions/5923149/… – Colin Feb 10 '12 at 20:32
    
no, it is not a duplicate. though the answer might be the same, the question is different. And why is it a POSSIBLE duplicate? If you think that it is, say so, or do you no tknow the answer to my question? If you do, please answer it. If you don't you can just remain quiet, you don't have to downvote it just because you are not sure. Thank you – Lucy Weatherford Feb 10 '12 at 20:40
    
I didn't downvote your question. And adding "possible duplicate" links to questions is fairly common on here. It's nothing personal. – Colin Feb 10 '12 at 20:43
1  
@Lucy Weatherford: When you use the close function, it asks you for a duplicate and automatically posts a comment as above, saying "Possible duplicate". That's the standard, and it is site policy to flag for close if a senior member thinks that it is a duplicate question. You are entirely correct that there is a big difference between a duplicate question and a question with the same answer as another question. Such questions are related and should be put in the comments, or referenced as part of an answer. – Orbling Feb 10 '12 at 20:44
    
@Orbling: Thanks for the clarification. As I do not have "close" privileges, I thought I'd link to that question as a reference for those that do. If it's not an exact duplicate - fair enough, but at the very least it serves as a related question as you mentioned. – Colin Feb 10 '12 at 20:50
up vote 3 down vote accepted

There's no such thing as a JSONobject in PHP (unless it's some user-defined something or other). There are only arrays or stdClass instances generated by json_decodedocs, which can be used with count.

It's possible to make an object respond to count by having the object implement the Countabledocs interface.

For the sake of completeness, consider the following count results:

$test = new stdClass;
$test->prop1 = 1;
$test->prop2 = 1;
var_dump(count($test)); // 1

$test = (array) $test;
var_dump(count($test)); // 2

class CountTest {
  public $prop1 = 1;
  public $prop2 = 1;
}

$test = new CountTest;
var_dump(count($test)); // 1

$test = (array) $test;
var_dump(count($test)); // 2

// class implementing Countable
class CountMe implements Countable { 
  protected $myCount = 3; 
  public function count(){ 
     return $this->myCount; 
  }
}
$test = new CountMe;
var_dump(count($test)); // 3
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1  
That isn't actually true and I should down vote - but you can fix it. json_decode does return an object (stdClass) by default for objects, unless you pass true as the second parameter to it, only then does it return arrays only. – Orbling Feb 10 '12 at 20:47
1  
thank you orbling - then when I json_decode I should pass true to get an array I can use in this way? thankyou! – Lucy Weatherford Feb 10 '12 at 20:50
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@Orbling I actually caught that myself after posting and edited between when you saw the problem and I saw your comment :) As always, thanks for the vigilance. – rdlowrey Feb 10 '12 at 20:50
1  
@LucyWeatherford: Yes, I pretty much always use json_encode(..., true) - I cannot think of a reason why the other way would be more useful to be honest, which makes me think it would be better for that to be the default. An annoyance that all AJAX programmers with PHP have to learn at some point. :-) – Orbling Feb 10 '12 at 21:16
1  
@Orbling For sure -- I try as much as possible to be slow with my righteous downvotes to give people a chance to fix accidents. Looks like I got some karma back, so thanks! I'm with you, though: it seems most people only use json_decode($json, TRUE) to get arrays. I always wondered why it wasn't the default option. – rdlowrey Feb 10 '12 at 21:41

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