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With this test page:

$page   = (int) $_GET['page'] ?: '1';
echo $page;

I don't understand the output I'm getting when page is undefined:

Request   Result
?page=2   2
?page=3   3
?page=    1
?         error: Undefined index page

Why the error message? It's php 5.3, why doesn't it echo "1"?

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4  
Pretty much unrelated, but you really want 1, not '1'. –  ThiefMaster Nov 17 '10 at 23:28
1  
On the command line, this prints 1 just fine: php -r 'echo (int)$foo ?: 1;' (PHP 5.3.3, notice the lack of error due to error reporting being silent). Can you try to run that and see what it does? Does it really say "error, undefined index"? –  deceze Nov 17 '10 at 23:33
1  
It is and has always been a notice. That "error message" is certainly hand-written. –  ThiefMaster Nov 17 '10 at 23:39
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5 Answers

up vote 11 down vote accepted

The proper way (in my opinion) would be:

$page = isset($_GET['page']) ? (int) $_GET['page'] : 1;

Even if you used the new style, you would have problems with ?page=0 (as 0 evaluated to false). "New" is not always better... you have to know when to use it.

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Yeah.. the ?: operator is useless for that.. even though a "return expr1 if it is not unset/empty, otherwise expr2" operator would be awesome they never added that. –  ThiefMaster Nov 17 '10 at 23:26
    
no no no, I want to use the new style –  Isis Nov 17 '10 at 23:27
2  
+1 for ternary op –  mepcotterell Nov 17 '10 at 23:28
2  
The one who downvoted can at least explain why. @Isis: Yes, they are optional but they can make the code easier to read... –  Felix Kling Nov 17 '10 at 23:44
2  
@Isis: Just add another test: (isset($_GET['page']) && $_GET['page'] > 0) ? $_GET['page'] : 1 (parenthesis looking pretty good now, eh? ;)) –  Felix Kling Nov 17 '10 at 23:48
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Unfortunately you cannot use it for the purpose you'd like to use it for:

Expression expr1 ?: expr3 returns expr1 if expr1 evaluates to TRUE, and expr3 otherwise.

So you'll still have to use isset or empty() - the ?: operator does not include an isset check. What you need to use is:

$page = !empty($_GET['page']) ? (int)$_GET['page'] : 1;
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It's because you're trying to typecast something that's undefined: (int) $_GET['page']

Remove the (int) or set the typecast after the conditional line.

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The error still persists –  Isis Nov 17 '10 at 23:21
    
Try doing this: $page = 1; if (!isset($_GET['page'])) { $page = (int) $_GET['page'] ?: '1'; } echo $page; –  wajiw Nov 17 '10 at 23:25
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Just for completeness, another way to achieve it is to pull operator rank:

 $page = (int)$_GET["page"]  or  $page = 1;

Many people perceive this as unreadable however, though it's shorter than isset() constructs.

Or if you are using input objects or any other utility class:

 $page = $_GET->int->default("page", 1);
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If bloat is your concern, how about a helper function?

function get_or($index, $default) {
    return isset($_GET[$index]) ? $_GET[$index] : $default;
}

then you can just use:

$page = get_or('page', 1);

which is clean and handles undefined values.

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